There are several ways to learn and share knowledge nowadays. One of the most popular forms of learning and sharing is a short video (video clips). We are all interested in this method and would like to apply both machine-learning and text-mining techniques to real-world data to analyse video classification from its transcript or subtitle. At the beginning of the project, we had many streaming websites and video podcasts on the table, such as YouTube, BBC Learning English, Apple podcasts, and TED talk. All of them are built as friendly user platforms that we are all familiar with. TED was finally selected for this project due to its provided data we could employ in our study. TED also contains a wide range of videos in terms of topics, languages, and length of videos. More importantly, each video on the TED talk website is labelled by a relevant category and provides a text transcript.
Therefore, the goal of this project is to, first, use sentiment analysis to identify opinions, judgements or feelings about what TED speakers have said about each TED talk topic. Secondly, we aim to use topic analysis to analyse and cluster the videos and compare them with the categories labelled by the TED talk website. Lastly, we will apply a text classification technique to predict the topics of the new videos.
The remainder of the project is organized as follows. Section 2 describes the data and the web scraping. Section 3 presents tokenization. Section 4 presents exploratory data analysis. Section 5 presents sentiment analysis. Section 6 performs topic modelling analysis. Section 7 performs embedding analysis. Section 8 performs the supervised analysis. The main results of this study and a brief limitation and possible further study of the research are then presented in Section 9.
We acquire the transcript text from each TED talks’ videos, we scraped the text from TED website, and our scraping was in the following order:
Use RSelenium package open TED
website.
Go to TED Talks session by clicking the navigation bar
button.
Select language, topics, and the sort by to specify the range of video types.
As the structure of TED website is not stable, it changes over time. In this case, we failed to click in each videos’ page to scrape data immediately. Thus, we first scrape the videos’ title name from the browser result page after the third step. The output in this step will be a data frame including the names of all videos we want to scrape further.
Click in the search box, use the videos’ title name to search the
corresponding video then always click the first result after searching
by using it’s xpath.
After clicking in each video’s page, we first click
Read transcript button to extent the transcript text area.
Then, we begin to scrape the all related information that we might use
in the following analysis.
After scraping the information of each videos, there is a step of going back to the browser result page.
As mentioned above, since during the process of scraping TED data, we
found the for loop of clicking in each video and scraping
text is often interrupted, and some xpaths would fail to
use in the case of different day operations. In this case, we have
adopted the following response methods:
css,
xpath,link text and
partial link text four approaches to locate the position of
the videos or the button of Read transcript and
Next.Sys.sleep to each scraping and clicking step, so that the
system can give the website react time.Finally, we set the closing function at the end in case closing the browser incorrectly would influence future scraping the next time.
After scraping data from TED.com website, we imported two tables saved in .csv format in the data folder, namely TED.csv and add_details_1.csv. The original tables consist of 330 observations with 11 variables and 310 observations with 2 variables, respectively.
We then removed duplicated observations for both tables and combined two tables by title column and named it as TED. TED table currently contains 324 observations with 12 variables. However, we would like to focus just 6 interesting variables, which were title of videos (title), when the videos were posted (posted), topic of videos (cate), the number of likes for videos (likes), transcript (tanscript), and the number of views of videos (views_details), for our further analyses, so we selected them and removed the rest. The title variable would be employed for only a sentiment analysis. Hence, we stored all 6 variables in TED_sentiment, which performs the main table of the sentiment analysis, and removed the title variable from TED.
We also spotted 34 missing values (NAs) in TED and they were removed later. Therefore, TED have 286 observations which are 103 videos from AI, 86 videos from Climate change, and 97 videos from Relationships.
## [1] 6
## [1] "How does artificial intelligence learn?"
## [2] "The danger of AI is weirder than you think"
## [3] "The wonderful and terrifying implications of computers that can learn"
## [4] "How do we find dignity at work?"
## [5] "The incredible inventions of intuitive AI"
## [6] "How AI can bring on a second Industrial Revolution"
## [7] "How AI can enhance our memory, work and social lives"
## [8] "We're building a dystopia just to make people click on ads"
## [9] "How AI can save our humanity"
## [10] "Why fascism is so tempting — and how your data could power it"
## [11] "How AI can help shatter barriers to equality"
## [12] "A future worth getting excited about"
## [13] "What happens in your brain when you pay attention?"
## [14] "Intelligent floating machines inspired by nature"
## [15] "What if you could sing in your favorite musician's voice?"
## [16] "Meet Milo, the virtual boy"
## [17] "Can a computer write poetry?"
## [18] "Building \"self-aware\" robots"
## [19] "How to get empowered, not overpowered, by AI"
## [20] "A bold idea to replace politicians"
## [21] "The medical potential of AI and metabolites"
## [22] "An AI smartwatch that detects seizures"
## [23] "Art in the age of machine intelligence"
## [24] "How do self-driving cars \"see\"?"
## [25] "A new equation for intelligence"
## [26] "How we'll earn money in a future without jobs"
## [27] "The ethical dilemma of self-driving cars"
## [28] "AI-generated creatures that stretch the boundaries of imagination"
## [29] "A new way to restore Earth's biodiversity — from the air"
## [30] "Get ready for hybrid thinking"
## [31] "Can we build AI without losing control over it?"
## [32] "A friendly, autonomous robot that delivers your food"
## [33] "Is humanity smart enough to survive itself?"
## [34] "How AI could empower any business"
## [35] "4 lessons from robots about being human"
## [36] "The value of your humanity in an automated future"
## [37] "How do we learn to work with intelligent machines?"
## [38] "How AI could become an extension of your mind"
## [39] "3 myths about the future of work (and why they're not true)"
## [40] "Watson, Jeopardy and me, the obsolete know-it-all"
## [41] "How bad data keeps us from good AI"
## [42] "How we're teaching computers to understand pictures"
## [43] "Technology that knows what you're feeling"
## [44] "Where's Google going next?"
## [45] "How to keep human bias out of AI"
## [46] "Machine intelligence makes human morals more important"
## [47] "The line between life and not-life"
## [48] "Robots that fly ... and cooperate"
## [49] "How computers are learning to be creative"
## [50] "Don't fear superintelligent AI"
## [51] "Why we need to imagine different futures"
## [52] "How computers learn to recognize objects instantly"
## [53] "How we can build AI to help humans, not hurt us"
## [54] "Siri, Alexa, Google ... what comes next?"
## [55] "How civilization could destroy itself — and 4 ways we could prevent it"
## [56] "3 principles for creating safer AI"
## [57] "The 4 greatest threats to the survival of humanity"
## [58] "The rise of personal robots"
## [59] "Connected, but alone?"
## [60] "Robots will invade our lives"
## [61] "An animated tour of the invisible"
## [62] "How we can teach computers to make sense of our emotions"
## [63] "A fascinating time capsule of human feelings toward AI"
## [64] "How humans and AI can work together to create better businesses"
## [65] "Can machines read your emotions?"
## [66] "How brain science will change computing"
## [67] "What moral decisions should driverless cars make?"
## [68] "AI isn't as smart as you think — but it could be"
## [69] "What happens when our computers get smarter than we are?"
## [70] "The human skills we need in an unpredictable world"
## [71] "The jobs we'll lose to machines — and the ones we won't"
## [72] "Can we learn to talk to sperm whales?"
## [73] "A new way to monitor vital signs (that can see through walls)"
## [74] "Why people and AI make good business partners"
## [75] "What would happen if we upload our brains to computers?"
## [76] "Robots with \"soul\""
## [77] "How I'm using biological data to tell better stories — and spark social change"
## [78] "Silicon-based comedy"
## [79] "The rise of human-computer cooperation"
## [80] "The Greek myth of Talos, the first robot"
## [81] "A future with fewer cars"
## [82] "What intelligent machines can learn from a school of fish"
## [83] "How AI is making it easier to diagnose disease"
## [84] "The real reason for brains"
## [85] "My seven species of robot — and how we created them"
## [86] "The race to build AI that benefits humanity with Sam Altman"
## [87] "How deepfakes undermine truth and threaten democracy"
## [88] "Can a robot pass a university entrance exam?"
## [89] "What AI is — and isn't"
## [90] "Could you recover from illness ... using your own stem cells?"
## [91] "How new technology helps blind people explore the world"
## [92] "How AI could compose a personalized soundtrack to your life"
## [93] "How to be \"Team Human\" in the digital future"
## [94] "6 big ethical questions about the future of AI"
## [95] "What is deep tech? A look at how it could shape the future"
## [96] "Don't fear intelligent machines. Work with them"
## [97] "How I'm fighting bias in algorithms"
## [98] "Fake videos of real people — and how to spot them"
## [99] "How we're using AI to discover new antibiotics"
## [100] "A funny look at the unintended consequences of technology"
## [101] "How to get better at video games, according to babies"
## [102] "A sci-fi vision of life in 2041"
## [103] "We're covered in germs. Let's design for that."
## [104] "Our moral imperative to act on climate change — and 3 steps we can take (English voiceover)"
## [105] "Global warming's theme song, \"Manhattan in January\""
## [106] "A 40-year plan for energy"
## [107] "Can the ocean run out of oxygen?"
## [108] "Whatever happened to acid rain?"
## [109] "How we'll resurrect the gastric brooding frog, the Tasmanian tiger"
## [110] "Fusion is energy's future"
## [111] "An urgent call to protect the world's \"Third Pole\""
## [112] "Humanity's planet-shaping powers — and what they mean for the future"
## [113] "The energy Africa needs to develop — and fight climate change"
## [114] "The secrets I find on the mysterious ocean floor"
## [115] "American bipartisan politics can be saved — here's how"
## [116] "Why wildfires have gotten worse — and what we can do about it"
## [117] "A wide-angle view of fragile Earth"
## [118] "The innovations we need to avoid a climate disaster"
## [119] "What farmers need to be modern, climate-friendly and profitable"
## [120] "Why we should archive everything on the planet"
## [121] "How shocking events can spark positive change"
## [122] "Why you should be a climate activist"
## [123] "This sea creature breathes through its butt"
## [124] "Global priorities bigger than climate change"
## [125] "The \"myth\" of the boiling frog"
## [126] "Why bees are disappearing"
## [127] "Vultures: The acid-puking, plague-busting heroes of the ecosystem"
## [128] "How small countries can make a big impact on climate change"
## [129] "Why I protest for climate justice"
## [130] "Why act now?"
## [131] "The state of the climate — and what we might do about it"
## [132] "Metal that breathes"
## [133] "3 thoughtful ways to conserve water"
## [134] "Hooked by an octopus"
## [135] "Why is the world warming up?"
## [136] "A reality check on renewables"
## [137] "How to turn climate anxiety into action"
## [138] "What comes after An Inconvenient Truth?"
## [139] "What if cracks in concrete could fix themselves?"
## [140] "A small country with big ideas to get rid of fossil fuels"
## [141] "We need to track the world's water like we track the weather"
## [142] "How to shift your mindset and choose your future"
## [143] "Can seaweed help curb global warming?"
## [144] "What to do when climate change feels unstoppable"
## [145] "The case for optimism on climate change"
## [146] "The magic of the Amazon: A river that flows invisibly all around us"
## [147] "How to transform sinking cities into landscapes that fight floods"
## [148] "What nature can teach us about sustainable business"
## [149] "The ocean's ingenious climate solutions"
## [150] "3 ways your company's data can jump-start climate action"
## [151] "Life in Biosphere 2"
## [152] "Emergency medicine for our climate fever"
## [153] "How to be a good ancestor"
## [154] "Community investment is the missing piece of climate action"
## [155] "The untapped energy source that could power the planet"
## [156] "It's impossible to have healthy people on a sick planet"
## [157] "How China is (and isn't) fighting pollution and climate change"
## [158] "5 transformational policies for a prosperous and sustainable world"
## [159] "A new way to remove CO2 from the atmosphere"
## [160] "A bold plan to protect 30 percent of the Earth's surface and ocean floor"
## [161] "The \"greenhouse-in-a-box\" empowering farmers in India"
## [162] "Where does all the carbon we release go?"
## [163] "What if there were 1 trillion more trees?"
## [164] "The hidden wonders of soil"
## [165] "Africa's great carbon valley — and how to end energy poverty"
## [166] "The eco-creators helping the climate through social media"
## [167] "How to find joy in climate action"
## [168] "An interactive map to track (and end) pollution in China"
## [169] "How we can curb climate change by spending two percent more on everything"
## [170] "The wonderful world of life in a drop of water"
## [171] "Can clouds buy us more time to solve climate change?"
## [172] "A new economic model for protecting tropical forests "
## [173] "What seaweed and cow burps have to do with climate change"
## [174] "How to make radical climate action the new normal"
## [175] "The 55 gigaton challenge"
## [176] "Why don't we cover the desert with solar panels?"
## [177] "The science behind a climate headline"
## [178] "The race to a zero-emission world starts now"
## [179] "How we can turn the tide on climate"
## [180] "Plant fuels that could power a jet"
## [181] "Amazon's climate pledge to be net-zero by 2040"
## [182] "The discoveries awaiting us in the ocean's twilight zone"
## [183] "Ecology from the air"
## [184] "How we can detect pretty much anything"
## [185] "Hopeful lessons from the battle to save rainforests"
## [186] "How we look kilometers below the Antarctic ice sheet"
## [187] "My country will be underwater soon — unless we work together"
## [188] "The secret life of plankton"
## [189] "The big-beaked, rock-munching fish that protect coral reefs"
## [190] "Energy from floating algae pods"
## [191] "Apple's promise to be carbon neutral by 2030"
## [192] "Urbanization and the evolution of cities across 10,000 years"
## [193] "Let's scan the whole planet with LiDAR"
## [194] "Why are blue whales so enormous?"
## [195] "Why is cotton in everything?"
## [196] "The Arctic vs. the Antarctic"
## [197] "The lovable (and lethal) sea lion"
## [198] "Why I still have hope for coral reefs"
## [199] "Is the weather actually becoming more extreme?"
## [200] "Climate change is our reality. Here's how we're taking action"
## [201] "The biggest risks facing cities — and some solutions"
## [202] "Make your actions on climate reflect your words"
## [203] "Why climate change is a threat to human rights"
## [204] "What a nun can teach a scientist about ecology"
## [205] "How the military fights climate change"
## [206] "A brief history of divorce"
## [207] "Love vs. Honor: The Irish myth of Diarmuid's betrayal"
## [208] "What emotions look like in a dog's brain"
## [209] "Beautiful new words to describe obscure emotions"
## [210] "Technology hasn't changed love. Here's why"
## [211] "How reverse mentorship can help create better leaders"
## [212] "\"First Kiss\""
## [213] "What you don't know about marriage"
## [214] "Fifty shades of gay"
## [215] "Intimate photos of a senior love triangle"
## [216] "How understanding divorce can help your marriage"
## [217] "Want to change the world? Start by being brave enough to care"
## [218] "Why we love, why we cheat"
## [219] "The keys to a happier, healthier sex life"
## [220] "\"Everything happens for a reason\" — and other lies I've loved"
## [221] "4 signs of emotional abuse"
## [222] "Say your truths and seek them in others"
## [223] "How to speak up for yourself"
## [224] "The truth about faking orgasms"
## [225] "The therapeutic value of photography"
## [226] "The myth of the original star-crossed lovers"
## [227] "How to co-parent as allies, not adversaries"
## [228] "Are we designed to be sexual omnivores?"
## [229] "The science of sex"
## [230] "The office without a**holes"
## [231] "How to support yourself (and others) through grief"
## [232] "5 ways to create stronger connections"
## [233] "Why US laws must expand beyond the nuclear family"
## [234] "How to avoid catching prickly emotions from other people"
## [235] "The 100 tampons NASA (almost) sent to space — and other absurd songs"
## [236] "How to speed up chemical reactions (and get a date)"
## [237] "What makes life worth living in the face of death"
## [238] "The emotions behind your money habits"
## [239] "How to have constructive conversations"
## [240] "What makes a friendship last?"
## [241] "The secret to great opportunities? The person you haven't met yet"
## [242] "How to stop swiping and find your person on dating apps"
## [243] "The beauty and complexity of finding common ground"
## [244] "How to discover your \"why\" in difficult times"
## [245] "A second chance for fathers to connect with their kids"
## [246] "Ethical dilemma: Who should you believe?"
## [247] "How compassion could save your strained relationships"
## [248] "This could be why you're depressed or anxious"
## [249] "How couples can sustain a strong sexual connection for a lifetime"
## [250] "There's more to life than being happy"
## [251] "The science behind how parents affect child development"
## [252] "What young women believe about their own sexual pleasure"
## [253] "The brain in love"
## [254] "Why art is a tool for hope"
## [255] "The profound power of gratitude and \"living eulogies\""
## [256] "A love story about the power of art as organizing"
## [257] "Is it really that bad to marry my cousin?"
## [258] "The necessity of normalizing queer love"
## [259] "The legend of Annapurna, Hindu goddess of nourishment"
## [260] "A sci-fi vision of love from a 318-year-old hologram"
## [261] "The lost art of letter-writing"
## [262] "Ideas worth dating"
## [263] "Rethinking thinking"
## [264] "A sex therapist's secret to rediscovering your spark"
## [265] "The uncomplicated truth about women's sexuality"
## [266] "This is what LGBT life is like around the world"
## [267] "Why I photograph the quiet moments of grief and loss"
## [268] "What is love?"
## [269] "What almost dying taught me about living"
## [270] "How to raise kids who can overcome anxiety"
## [271] "How Dolly Parton led me to an epiphany"
## [272] "4 kinds of regret — and what they teach you about yourself"
## [273] "What you discover when you really listen"
## [274] "The money talk that every couple needs to have"
## [275] "3 lessons of revolutionary love in a time of rage"
## [276] "7 common questions about workplace romance"
## [277] "The relationship between sex and imagination"
## [278] "The journey through loss and grief"
## [279] "The benefits of not being a jerk to yourself"
## [280] "Why bittersweet emotions underscore life's beauty"
## [281] "How friendship affects your brain"
## [282] "Rethinking infidelity ... a talk for anyone who has ever loved"
## [283] "Why domestic violence victims don't leave"
## [284] "How peer educators can transform sex education"
## [285] "An ode to envy"
## [286] "The myth of Zeus' test"
## [287] "\"Accents\""
## [288] "The mathematics of love"
## [289] "Should you care what your parents think?"
## [290] "On tennis, love and motherhood"
## [291] "A little-told tale of sex and sensuality"
## [292] "Why do we love? A philosophical inquiry"
## [293] "The difference between healthy and unhealthy love"
## [294] "How to preserve your private life in the age of social media"
## [295] "Sex education should start with consent"
## [296] "This is what enduring love looks like"
## [297] "What makes a good life? Lessons from the longest study on happiness"
## [298] "A queer vision of love and marriage"
## [299] "The mood-boosting power of crying"
## [300] "Love others to love yourself"
## [301] "What we can do about the culture of hate"
## [302] "The routines, rituals and boundaries we need in stressful times"
## [303] "What\xcayou\xcacan\xcalearn\xcafrom\xcapeople\xcawho\xcadisagree\xcawith\xcayou"
## [304] "You\xcaare\xcanot\xcaalone\xcain\xcayour\xcaloneliness"
| Topics | Count |
|---|---|
| AI | 103 |
| Climate change | 86 |
| Relationships | 97 |
Subsequently, it turned to data parsing step. We converted posting time, the number of likes, the number of views to be in the appropriate format for further analyses. For example, the posting time for the first video, “How does artificial intelligence learn?”, was Mar 2021 in the original TED table. It was converted to be 2021-03-01.
For the transcript, there were the number of translated languages and the details of the translation at the beginning of the transcript every video. In this project, we focus only the actual transcript. Thus, we removed this part out of the transcript. For example, the first sentence of the transcript in the first video,“How does artificial intelligence learn?”, was “Transcript (28 Languages)Bahasa IndonesiaDeutschEnglishEspañolFrançaisItalianoMagyarPolskiPortuguês brasileiroPortuguês de PortugalRomânăTiếng ViệtTürkçeΕλληνικάРусскийСрпски, Srpskiעבריתالعربيةفارسىکوردی سۆرانیবাংলাதமிழ்ภาษาไทยမြန်မာဘာသာ中文 (简体)中文 (繁體)日本語한국어”. We removed this part out of the transcript.
We also converted the topic names, AI, Climate change, and Relationships, to be numbers 1, 2, and 3 under cate variable in TED, respectively. This would be easy to keep track of the videos in supervised and unsupervised learning analyses.
Due to the limited number of available videos within the selected topics on TED website, we could not scrape more videos for unsupervised and supervised learning analyses, and we would like to obtain a robust model as well as avoid the overfitting problem. Therefore, we decided to increase the number of our observations by setting up a window of 20 sentences to be equal to 1 observation as we noticed that the transcripts each video comprised of more than 20 sentences.
We split sentences by using the tokenize_sentence function from quanteda package and created a new variable, namely sub cate. For example, sub_cate of 1.1 indicates that the observation is from the first transcript in AI (The first topic). We then created a text variable to indicate and identify each text. For example, a text of 1.1.1 indicates that this text comes from the first 20 sentences of the first transcript in AI topic. By doing this, the number of observations increases from 286 to 1,471 and we named this data frame as TED_full. To sum up, TED_full consists of 1,471 observations with 7 variables which are posted, cate, like, view, subcate, text, tanscript.
| posted | cate | like | view | subcate | text | tanscript | |
|---|---|---|---|---|---|---|---|
| 10 | 2014-12-01 | 1 | 80000 | 2693800 | 1.3 | 1.3.4 | In fact, deep learning has done more than that. Complex, nuanced sentences like this one are now understandable with deep learning algorithms. As you can see here, this Stanford-based system showing the red dot at the top has figured out that this sentence is expressing negative sentiment. Deep learning now in fact is near human performance at understanding what sentences are about and what it is saying about those things. Also, deep learning has been used to read Chinese, again at about native Chinese speaker level. This algorithm developed out of Switzerland by people, none of whom speak or understand any Chinese. As I say, using deep learning is about the best system in the world for this, even compared to native human understanding. : This is a system that we put together at my company which shows putting all this stuff together. These are pictures which have no text attached, and as I’m typing in here sentences, in real time it’s understanding these pictures and figuring out what they’re about and finding pictures that are similar to the text that I’m writing. So you can see, it’s actually understanding my sentences and actually understanding these pictures. I know that you’ve seen something like this on Google, where you can type in things and it will show you pictures, but actually what it’s doing is it’s searching the webpage for the text. This is very different from actually understanding the images. This is something that computers have only been able to do for the first time in the last few months. : footnotefootnoteSo we can see now that computers can not only see but they can also read, and, of course, we’ve shown that they can understand what they hear. Perhaps not surprising now that I’m going to tell you they can write. Here is some text that I generated using a deep learning algorithm yesterday. And here is some text that an algorithm out of Stanford generated. Each of these sentences was generated by a deep learning algorithm to describe each of those pictures. This algorithm before has never seen a man in a black shirt playing a guitar. It’s seen a man before, it’s seen black before, it’s seen a guitar before, but it has independently generated this novel description of this picture. We’re still not quite at human performance here, but we’re close. In tests, humans prefer the computer-generated caption one out of four times. |
We tokenized our transcript by quanteda package aiming to receive Document-Term Matrix and TFIDF matrix. In this section, we performed the tokenization twice. First, we tokenized TED, which consists of 286 videos/observations, to gain access into hidden insights each video and to observe the similarity and dissimilarity of each video. Second, we tokenized TED_full, which consists of 1,471 instances, for unsupervised and supervised learning analyses.
We applied corpus() and tokens() functions to the tanscript variable to remove numbers, all characters in the “punctuation”, symbols, and separators. We then removed stop words from the SMART information retrieval system in English (571 words) and also deleted 2 more words, applaud and laughter, that they appear often in our transcript as sound representation. Sound representation in a transcript is one of the translated functionality of TED meant to enable deaf and hard-of-hearing viewers to understand all the non-spoken auditory information. Afterward, we performed lemmatization and named the data frame as TED.tk1.
To obtain the Document-Term Matrix and the TFIDF matrix, we used dfm() and dfm_tfidf() functions, respectively. The first 10 terms and 10 documents (videos) are shown below. Additionally, the frequencies per terms can simply be obtained using textstat_frequency() as presented in the last table.
## Corpus consisting of 286 documents, showing 100 documents:
##
## Text Types Tokens Sentences
## text1 349 744 32
## text2 520 1896 72
## text3 879 3943 161
## text4 636 2504 96
## text5 787 2796 124
## text6 618 2495 108
## text7 491 1510 71
## text8 909 3320 161
## text9 708 2216 73
## text10 705 2731 121
## text11 393 889 28
## text12 1847 12092 470
## text13 313 928 37
## text14 420 1080 41
## text15 373 1137 31
## text16 567 1899 100
## text17 513 2004 86
## text18 365 1262 57
## text19 888 3067 102
## text20 594 2462 94
## text21 296 759 31
## text22 781 2796 114
## text23 664 1698 62
## text24 381 832 30
## text25 644 1838 54
## text26 738 2943 93
## text27 336 705 26
## text28 482 1385 50
## text29 192 338 16
## text30 619 1905 87
## text31 738 2571 110
## text32 528 1482 81
## text33 891 2824 184
## text34 585 2088 67
## text35 743 2858 109
## text36 669 1856 70
## text37 593 1610 82
## text38 519 1575 63
## text39 802 3103 127
## text40 991 3974 192
## text41 514 1372 54
## text42 824 2616 99
## text43 663 2099 87
## text44 844 4577 193
## text45 608 1975 89
## text46 909 2933 146
## text47 672 3171 133
## text48 725 2682 129
## text49 813 3451 125
## text50 630 1855 84
## text51 861 2616 104
## text52 398 1233 52
## text53 486 1540 74
## text54 538 1479 76
## text55 964 4322 134
## text56 798 3339 150
## text57 359 761 27
## text58 766 2952 130
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## text60 817 3595 206
## text61 546 1683 119
## text62 633 2108 93
## text63 486 1331 50
## text64 691 2067 111
## text65 351 660 31
## text66 941 5057 297
## text67 607 2119 74
## text68 875 3854 118
## text69 849 2889 107
## text70 722 2231 79
## text71 376 831 46
## text72 483 1089 37
## text73 562 2314 79
## text74 483 1089 37
## text75 572 1796 84
## text76 572 1796 84
## text77 681 2618 116
## text78 739 3401 127
## text79 497 1095 32
## text80 394 986 64
## text81 885 2488 110
## text82 321 600 25
## text83 431 1036 43
## text84 524 1920 58
## text85 300 841 28
## text86 986 4554 216
## text87 950 3541 198
## text88 1898 13346 635
## text89 723 1981 107
## text90 558 1889 100
## text91 1144 5082 234
## text92 557 1624 74
## text93 468 1288 65
## text94 384 1100 35
## text95 713 2239 108
## text96 498 1241 57
## text97 672 1818 82
## text98 510 1364 70
## text99 529 1348 44
## text100 437 1104 41
| doc_id | today | artificial | intelligence | help | doctor | diagnose | patient | pilot | fly | commercial |
|---|---|---|---|---|---|---|---|---|---|---|
| text1 | 1 | 3 | 2 | 1 | 6 | 4 | 11 | 1 | 1 | 1 |
| text2 | 0 | 2 | 2 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
| text3 | 1 | 0 | 0 | 0 | 2 | 0 | 0 | 0 | 0 | 1 |
| text4 | 0 | 1 | 1 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
| text5 | 1 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 2 | 0 |
| text6 | 3 | 12 | 10 | 0 | 2 | 1 | 0 | 1 | 2 | 0 |
| text7 | 3 | 3 | 7 | 4 | 1 | 1 | 0 | 0 | 0 | 0 |
| text8 | 1 | 8 | 10 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
| text9 | 2 | 2 | 2 | 5 | 0 | 1 | 0 | 0 | 0 | 0 |
| text10 | 3 | 2 | 2 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
| doc_id | today | artificial | intelligence | help | doctor | diagnose | patient | pilot | fly | commercial |
|---|---|---|---|---|---|---|---|---|---|---|
| text1 | 0.2716746 | 1.8525508 | 1.1980671 | 0.4520447 | 5.0614931 | 4.378553 | 10.61505 | 1.225917 | 0.8129134 | 1.280275 |
| text2 | 0.0000000 | 1.2350339 | 1.1980671 | 0.0000000 | 0.0000000 | 0.000000 | 0.00000 | 0.000000 | 0.0000000 | 0.000000 |
| text3 | 0.2716746 | 0.0000000 | 0.0000000 | 0.0000000 | 1.6871644 | 0.000000 | 0.00000 | 0.000000 | 0.0000000 | 1.280275 |
| text4 | 0.0000000 | 0.6175169 | 0.5990335 | 0.0000000 | 0.0000000 | 0.000000 | 0.00000 | 0.000000 | 0.0000000 | 0.000000 |
| text5 | 0.2716746 | 0.0000000 | 0.0000000 | 0.0000000 | 0.0000000 | 0.000000 | 0.00000 | 0.000000 | 1.6258267 | 0.000000 |
| text6 | 0.8150238 | 7.4102033 | 5.9903354 | 0.0000000 | 1.6871644 | 1.094638 | 0.00000 | 1.225917 | 1.6258267 | 0.000000 |
| text7 | 0.8150238 | 1.8525508 | 4.1932348 | 1.8081786 | 0.8435822 | 1.094638 | 0.00000 | 0.000000 | 0.0000000 | 0.000000 |
| text8 | 0.2716746 | 4.9401355 | 5.9903354 | 0.0000000 | 0.0000000 | 0.000000 | 0.00000 | 0.000000 | 0.0000000 | 0.000000 |
| text9 | 0.5433492 | 1.2350339 | 1.1980671 | 2.2602233 | 0.0000000 | 1.094638 | 0.00000 | 0.000000 | 0.0000000 | 0.000000 |
| text10 | 0.8150238 | 1.2350339 | 1.1980671 | 0.0000000 | 0.0000000 | 0.000000 | 0.00000 | 0.000000 | 0.0000000 | 0.000000 |
## feature frequency rank docfreq group
## 1 people 1992 1 239 all
## 2 make 1616 2 269 all
## 3 thing 1505 3 234 all
## 4 time 1290 4 258 all
## 5 year 1286 5 253 all
## 6 work 1175 6 238 all
## 7 human 1071 7 191 all
## 8 world 940 8 216 all
## 9 life 796 9 207 all
## 10 love 780 10 148 all
I aim to create DTM, TFIDF tables by quanteda package.
## Corpus consisting of 1471 documents, showing 100 documents:
##
## Text Types Tokens Sentences
## text1 240 453 20
## text2 182 291 12
## text3 222 499 20
## text4 232 555 20
## text5 221 550 20
## text6 130 292 12
## text7 238 551 20
## text8 246 526 20
## text9 217 476 20
## text10 192 451 20
## text11 258 579 20
## text12 207 548 20
## text13 184 367 20
## text14 210 442 20
## text15 3 3 1
## text16 255 562 20
## text17 204 477 20
## text18 236 566 20
## text19 188 468 20
## text20 195 431 16
## text21 165 328 20
## text22 226 462 20
## text23 213 409 20
## text24 235 459 20
## text25 258 563 20
## text26 224 515 20
## text27 48 60 4
## text28 200 435 20
## text29 220 555 20
## text30 235 555 20
## text31 183 468 20
## text32 150 335 20
## text33 79 147 8
## text34 191 387 20
## text35 156 313 20
## text36 206 427 20
## text37 182 383 11
## text38 190 337 20
## text39 164 333 20
## text40 197 384 20
## text41 232 483 20
## text42 227 469 20
## text43 153 305 20
## text44 268 555 20
## text45 199 380 20
## text46 51 74 1
## text47 297 681 20
## text48 287 600 20
## text49 275 608 20
## text50 156 327 13
## text51 182 388 20
## text52 169 394 20
## text53 166 387 20
## text54 247 586 20
## text55 196 428 20
## text56 251 533 20
## text57 13 15 1
## text58 310 606 20
## text59 155 283 8
## text60 178 399 20
## text61 205 499 20
## text62 197 479 20
## text63 239 564 20
## text64 229 544 20
## text65 264 629 20
## text66 235 556 20
## text67 249 571 20
## text68 203 522 20
## text69 222 540 20
## text70 218 469 20
## text71 248 598 20
## text72 181 407 20
## text73 173 342 20
## text74 184 407 20
## text75 260 639 20
## text76 196 492 20
## text77 251 588 20
## text78 197 430 20
## text79 245 597 20
## text80 233 584 20
## text81 226 520 20
## text82 216 522 20
## text83 106 194 10
## text84 197 495 20
## text85 204 433 17
## text86 285 601 20
## text87 225 445 20
## text88 22 34 1
## text89 242 609 20
## text90 204 528 11
## text91 218 450 20
## text92 207 403 20
## text93 133 253 20
## text94 179 379 20
## text95 214 414 20
## text96 168 327 20
## text97 180 463 20
## text98 216 515 20
## text99 199 543 20
## text100 85 156 6
## Tokens consisting of 1,471 documents.
## text1 :
## [1] "today" "artificial" "intelligence" "help" "doctor"
## [6] "diagnose" "patient" "pilot" "fly" "commercial"
## [11] "aircraft" "city"
## [ ... and 192 more ]
##
## text2 :
## [1] "treatment" "progress" "program" "receive" "feedback"
## [6] "constantly" "update" "plan" "patient" "technique"
## [11] "inherently" "smart"
## [ ... and 109 more ]
##
## text3 :
## [1] "artificial" "intelligence" "disrupt" "kind" "industry"
## [6] "ice" "cream" "kind" "mind-blowing" "flavor"
## [11] "generate" "power"
## [ ... and 124 more ]
##
## text4 :
## [1] "turn" "ai" "solve" "problem" "assemble"
## [6] "tower" "fall" "land" "point" "technically"
## [11] "solve" "problem"
## [ ... and 135 more ]
##
## text5 :
## [1] "think" "nice" "paint" "color" "name"
## [6] "imitate" "kind" "letter" "combination" "original"
## [11] "word" "word"
## [ ... and 149 more ]
##
## text6 :
## [1] "ai" "suppose" "copy" "thing" "human"
## [6] "technically" "ask" "accidentally" "ask" "wrong"
## [11] "thing" "time"
## [ ... and 68 more ]
##
## [ reached max_ndoc ... 1,465 more documents ]
## Document-feature matrix of: 6 documents, 15,045 features (99.39% sparse) and 0 docvars.
## features
## docs today artificial intelligence help doctor diagnose patient pilot fly
## text1 1 2 2 1 6 4 8 1 1
## text2 0 1 0 0 0 0 3 0 0
## text3 0 2 2 0 0 0 0 0 0
## text4 0 0 0 0 0 0 0 0 0
## text5 0 0 0 0 0 0 0 0 0
## text6 0 0 0 0 0 0 0 0 0
## features
## docs commercial
## text1 1
## text2 0
## text3 0
## text4 0
## text5 0
## text6 0
## [ reached max_nfeat ... 15,035 more features ]
## feature frequency rank docfreq group
## 1 people 1992 1 822 all
## 2 make 1616 2 858 all
## 3 thing 1505 3 760 all
## 4 time 1290 4 774 all
## 5 year 1286 5 684 all
## 6 work 1175 6 648 all
## 7 human 1071 7 478 all
## 8 world 940 8 547 all
## 9 life 796 9 447 all
## 10 love 780 10 325 all
## 11 start 721 11 457 all
## 12 feel 693 12 389 all
## 13 talk 689 13 441 all
## 14 ai 681 14 179 all
## 15 call 653 15 447 all
## 16 change 636 16 375 all
## 17 find 631 17 418 all
## 18 lot 629 18 424 all
## 19 kind 624 19 405 all
## 20 learn 618 20 325 all
## regret divorce sekou cell cousin vulture farmer chk
## 41.06482 38.19748 35.50333 35.45800 34.83772 34.39899 34.10429 31.67613
## holmes cloud
## 31.67613 30.69386
-Analysis of the word frequencies: compute and show frequencies and TF-IDF. -Comparison of the speeches in terms of lexical diversity -Comparison of two speeches in terms of key words (in the answer below Trump=target vs. Obama=reference). -Show links between terms (compute co-occurrences and try to build a network)
-because we have 3 different topics so we dont expect topic specific
words in the most frequent used terms. Altho we can see some words
related to our topic like love, ai, kind, world, human
Text 12: EM = Elon Musk, CA = Chris Anderson: Both words have high
TFIDF because they are specific to this text.
link to the number of sample we have in cate: numbers of
Relationships vdo are the highest among the others
TTR: The lexical diversity analysis is conclusive for these data. We can see that text237, text131 have the highest richness of vocabulary among the other documents.
Find another way to set up window or remove?
Do one chart per topic
AI we can see that the keyness of terms in text1 compared to all the
others include unsupervised supervised patient treatment.
The larger the value the more often two words occur together (in documents).
We now restrict the analysis to some terms as, otherwise, the result will be impossible to read. First, we restrict to the terms that have a frequency larger than 500
## Feature co-occurrence matrix of: 15,045 by 15,045 features.
## features
## features today artificial intelligence help doctor diagnose patient pilot
## today 614 492 616 343 153 77 165 31
## artificial 492 356 1208 175 112 72 131 25
## intelligence 616 1208 1259 245 111 92 141 18
## help 343 175 245 111 99 35 78 10
## doctor 153 112 111 99 166 58 250 13
## diagnose 77 72 92 35 58 16 96 7
## patient 165 131 141 78 250 96 221 20
## pilot 31 25 18 10 13 7 20 1
## fly 179 82 125 38 35 16 18 37
## commercial 44 19 21 10 14 6 16 3
## features
## features fly commercial
## today 179 44
## artificial 82 19
## intelligence 125 21
## help 38 10
## doctor 35 14
## diagnose 16 6
## patient 18 16
## pilot 37 3
## fly 116 5
## commercial 5 0
## [ reached max_feat ... 15,035 more features, reached max_nfeat ... 15,035 more features ]
## Feature co-occurrence matrix of: 30 by 30 features.
## features
## features people make thing time year work human world life love
## people 17777 19621 24547 14684 15661 14919 11851 11351 8906 9195
## make 19621 8745 18101 10778 11602 10450 10281 7895 5774 4632
## thing 24547 18101 12592 12432 13259 11599 10604 10002 6001 5712
## time 14684 10778 12432 4362 8549 7914 6787 6023 4653 4302
## year 15661 11602 13259 8549 6205 7146 6763 7316 4110 4801
## work 14919 10450 11599 7914 7146 5055 7033 5247 4067 3921
## human 11851 10281 10604 6787 6763 7033 7916 5219 3128 2791
## world 11351 7895 10002 6023 7316 5247 5219 3652 3259 3675
## life 8906 5774 6001 4653 4110 4067 3128 3259 3239 3834
## love 9195 4632 5712 4302 4801 3921 2791 3675 3834 7017
## [ reached max_feat ... 20 more features, reached max_nfeat ... 20 more features ]
To make a chart is possible to read, we decide that for less than 4500 co-occurences, there is no link (larger than 4500, there is one link). “make”, “thing”, “people” are the central terms that co-occurs a lot with the others. They are common words in TED talk. Due to 3 different topics, similar to the other charts, we do not expect to see the specific words for each topic in this analysis.
For “climate”, there is no co-occurance larger than 4500 but it’s still in the word with frequency more than 500.
In this part, we use two dictionary: AFINN, NRC and method of Valence-Shifters to do sentiment analysis for every video’s transcript, which means we don’t split the transcript by every 20 sentences. It might be better to see if the sentiment of video would influence the other features. Here, we have following hypothesis:
First, we use NRC method to check the sentiment description of each videos transcript. as it’s sentiment based method, we would like to only check the relationship with videos’ topics and their likes.
title | posted | cate | likes | views_details | word | sentiment |
How does artificial intelligence learn? | 2021-03-01 | AI | 15,000 | 513,440 | intelligence | fear |
How does artificial intelligence learn? | 2021-03-01 | AI | 15,000 | 513,440 | intelligence | joy |
How does artificial intelligence learn? | 2021-03-01 | AI | 15,000 | 513,440 | intelligence | positive |
How does artificial intelligence learn? | 2021-03-01 | AI | 15,000 | 513,440 | intelligence | trust |
How does artificial intelligence learn? | 2021-03-01 | AI | 15,000 | 513,440 | predict | anticipation |
Since there are near to 300 transcript (videos), we would like to extract 20 videos with the most likes and the least likes, respectively.
Re-scale sentiment by their length:
In this part, we did NRC method in two different ways, one without scaling and another with re-scaling the sentiment by their length in the documents.
No matter in which way we can see that there are no obvious difference among the videos with the most likes and the least likes, in terms of their likes. Positive and anticipation appearing in everywhere. In some top 20 videos, we could also see the negative and fear sentiment with relatively high levels.
we would like to check what is the more frequent sentiment appearing in each topics. we suppose the topic like climate change is more related to negative or fear sentiment, and for the topic like AI, we could see anticipation or positive sentiment more frequent.
As we assume, The topic of AI is often accompanied by positive and anticipation, and we could not ignore trust. Yet, we could see that negative also accounts for a not small part. Contrary to our speculation, the topic of climate change has the same positive sentiment which is also the most frequent part in this topic. And, each sentiment is more evenly distributed in the videos on the topic of relationships, even though the positive sentiment is still the most.
In this case, we begin to assume that positive sentiment actually is the main sentiment in TED talk showing in all videos, based on previous analysis.
Thus, except for the initial assumption, we would like to check one more assumption - if the positive sentiment appears in all videos, by using the value-based method: Afinn.
Here, we calculated the average sentiment score per video. We can see that the number of videos transcript with positive and negative values is very disparate. Thus, TED talk do prefer giving positive videos.
Since the number of likes for each video is relatively similar, and only individual videos have a large number of likes, we separate each category to observe the distribution of the number of likes and sentiment values. We can observe there are no obvious pattern as well. Only some videos in Climate change topic have negative sentiment and the less numbers of likes.
The sentiment values for each topic are relatively similar, and they are all in the upper-middle range - more positive. Among the topics of climate change and AI, the sentiment value of each video is more evenly distributed. AI topic has two outliners with lowest values, the most negative.
The talks on relationship topics have great fluctuations. Its mean sentiment value reached the lowest values before 2005 and around 2013. Climate change related topics have seen a decline in mean sentiment value in recent years. Yet, It is worth noting that the positive value of videos posted after 2020 is getting higher.
Meantime, we would like to check if there is a huge difference after using valence-shifters.
First, we can see that the sentiment values are distributed as
similar as the one without using Valence-Shifters. After counting the
number of videos transcripts with negative values, we found there are
31 videos having negative values before taking negative
form into account, and 19 videos having negative values
after considering negative form.
First, we build the LSA object and use 4 dimensions. Latent Semantic Analysis(LSA) decomposes this DTM(TED.dfm) into 3 matrices (\(M = U\Sigma V^{t}\)), centred around 4 topics. We check the 3 matrices: U:Doc-topic sim, Σ:Topic strength and V:Terms-topic sim.
| dimension1 | dimension2 | dimension3 | dimension4 | |
|---|---|---|---|---|
| text1 | -0.0279833 | 0.0561772 | -0.0062328 | 0.0010815 |
| text2 | -0.0215096 | 0.0463497 | -0.0014294 | -0.0103448 |
| text3 | -0.0307021 | 0.0859480 | 0.0117433 | -0.0083037 |
| text4 | -0.0380724 | 0.1135957 | 0.0104629 | -0.0307621 |
| text5 | -0.0356207 | 0.0885008 | 0.0106824 | -0.0660644 |
| text6 | -0.0246441 | 0.0817765 | 0.0108066 | -0.0532954 |
| text7 | -0.0338506 | 0.0583223 | 0.0036653 | 0.0059932 |
| text8 | -0.0370382 | 0.0411531 | 0.0103976 | 0.0116836 |
| text9 | -0.0447897 | 0.0265595 | 0.0185700 | -0.0080117 |
| text10 | -0.0338763 | 0.0454285 | 0.0153195 | 0.0024713 |
| text11 | -0.0423486 | 0.0567818 | -0.0033229 | -0.0016736 |
| text12 | -0.0379895 | 0.0574517 | 0.0136700 | 0.0113588 |
| text13 | -0.0288484 | 0.0045382 | -0.0153662 | -0.0019589 |
| text14 | -0.0406856 | 0.0217827 | 0.0084525 | 0.0156910 |
| text15 | -0.0002734 | -0.0002192 | 0.0000961 | 0.0000464 |
| text16 | -0.0365886 | 0.0122418 | 0.0176984 | 0.0030070 |
| text17 | -0.0311208 | -0.0028264 | -0.0026220 | 0.0048595 |
| text18 | -0.0492976 | -0.0351071 | 0.0427234 | -0.0208907 |
| text19 | -0.0363120 | -0.0152421 | 0.0234045 | -0.0237751 |
| text20 | -0.0339046 | -0.0038624 | 0.0173571 | -0.0082206 |
| text21 | -0.0208069 | 0.0077222 | -0.0139165 | 0.0000852 |
| text22 | -0.0222323 | 0.0278802 | -0.0051485 | 0.0079200 |
| text23 | -0.0297813 | 0.0321456 | -0.0013286 | 0.0138956 |
| text24 | -0.0374560 | 0.0496412 | 0.0096167 | 0.0257162 |
| text25 | -0.0557391 | 0.0888191 | 0.0219965 | 0.0710129 |
| text26 | -0.0521989 | 0.0306777 | -0.0003609 | 0.0141619 |
| text27 | -0.0042544 | 0.0008642 | 0.0006344 | 0.0036206 |
| text28 | -0.0251029 | 0.0411651 | -0.0072890 | -0.0124747 |
| text29 | -0.0344050 | 0.0589457 | 0.0114062 | -0.0139354 |
| text30 | -0.0369580 | 0.0318083 | -0.0254685 | 0.0025975 |
| text31 | -0.0226044 | 0.0485518 | 0.0056026 | 0.0161761 |
| text32 | -0.0356187 | 0.0534748 | 0.0104151 | -0.0168302 |
| text33 | -0.0080838 | 0.0072980 | -0.0092405 | -0.0085102 |
| text34 | -0.0352532 | 0.0656681 | 0.0181894 | -0.0454033 |
| text35 | -0.0242353 | 0.0542360 | -0.0041722 | -0.0215638 |
| text36 | -0.0330215 | 0.0461389 | 0.0104417 | -0.0272344 |
| text37 | -0.0308500 | 0.0598555 | -0.0063604 | -0.0430018 |
| text38 | -0.0179821 | 0.0097366 | 0.0049577 | 0.0050480 |
| text39 | -0.0238330 | 0.0061130 | 0.0053042 | 0.0052143 |
| text40 | -0.0274934 | 0.0193347 | 0.0062537 | -0.0169289 |
| text41 | -0.0315560 | 0.0155617 | 0.0168134 | -0.0053682 |
| text42 | -0.0234046 | -0.0124838 | 0.0248677 | -0.0152512 |
| text43 | -0.0179985 | -0.0099123 | 0.0128111 | 0.0014105 |
| text44 | -0.0261786 | -0.0016035 | -0.0003247 | -0.0083328 |
| text45 | -0.0287634 | 0.0188651 | -0.0088042 | -0.0123455 |
| text46 | -0.0029347 | 0.0044119 | -0.0022362 | -0.0012734 |
| text47 | -0.0552940 | 0.0733096 | 0.0024355 | -0.0509485 |
| text48 | -0.0358880 | 0.0440969 | -0.0276464 | -0.0150295 |
| text49 | -0.0521970 | 0.0006805 | 0.0569793 | -0.0663707 |
| text50 | -0.0317971 | 0.0670473 | 0.0153916 | -0.0577716 |
| text51 | -0.0206433 | -0.0126664 | 0.0078986 | -0.0133199 |
| text52 | -0.0205440 | -0.0224562 | 0.0134115 | -0.0112309 |
| text53 | -0.0246325 | -0.0093468 | 0.0051426 | 0.0010782 |
| text54 | -0.0372347 | 0.0492480 | -0.0246981 | -0.0280275 |
| text55 | -0.0179237 | 0.0050522 | -0.0064212 | -0.0046819 |
| text56 | -0.0340575 | -0.0007286 | 0.0000155 | 0.0004383 |
| text57 | -0.0002800 | -0.0002177 | 0.0000933 | 0.0000443 |
| text58 | -0.0387312 | 0.0139075 | 0.0124944 | -0.0249154 |
| text59 | -0.0187707 | -0.0058363 | 0.0048127 | -0.0145163 |
| text60 | -0.0304345 | -0.0145236 | -0.0096096 | 0.0052979 |
| text61 | -0.0274175 | -0.0111679 | -0.0359774 | 0.0146917 |
| text62 | -0.0336390 | -0.0307688 | -0.0397434 | 0.0019181 |
| text63 | -0.0365880 | -0.0182064 | -0.0274250 | 0.0199141 |
| text64 | -0.0367709 | 0.0240360 | 0.0088370 | -0.0023384 |
| text65 | -0.0369276 | 0.0098701 | -0.0100740 | 0.0136045 |
| text66 | -0.0380612 | -0.0003095 | -0.0075114 | -0.0003216 |
| text67 | -0.0438540 | 0.0388025 | 0.0346646 | 0.1135046 |
| text68 | -0.0436554 | -0.0029038 | 0.0384375 | 0.0593777 |
| text69 | -0.0432863 | 0.0089356 | -0.0104822 | 0.0353299 |
| text70 | -0.0230926 | 0.0254432 | 0.0042603 | 0.0043933 |
| text71 | -0.0363061 | 0.0065540 | 0.0182818 | -0.0013600 |
| text72 | -0.0253895 | 0.0186895 | 0.0178868 | -0.0008391 |
| text73 | -0.0222579 | -0.0043708 | 0.0067340 | 0.0023973 |
| text74 | -0.0225799 | -0.0086746 | -0.0271082 | 0.0152771 |
| text75 | -0.0365370 | -0.0004380 | -0.0128821 | 0.0025697 |
| text76 | -0.0390514 | -0.0201863 | 0.0121366 | -0.0127377 |
| text77 | -0.0483404 | -0.0368092 | 0.0285262 | -0.0121317 |
| text78 | -0.0220029 | -0.0159129 | -0.0014702 | 0.0035078 |
| text79 | -0.0380605 | -0.0097169 | -0.0031074 | 0.0115252 |
| text80 | -0.0370130 | -0.0109523 | -0.0137154 | 0.0037824 |
| text81 | -0.0307334 | -0.0165525 | -0.0143823 | -0.0040249 |
| text82 | -0.0296924 | -0.0104191 | 0.0110662 | -0.0204233 |
| text83 | -0.0123499 | -0.0042439 | -0.0082059 | -0.0008252 |
| text84 | -0.0273602 | 0.0017589 | 0.0222625 | 0.0105088 |
| text85 | -0.0333002 | -0.0073377 | 0.0280700 | -0.0012174 |
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| text1340 | -0.0215651 | -0.0228215 | 0.0162005 | -0.0001731 |
| text1341 | -0.0085816 | -0.0081415 | -0.0014404 | 0.0019583 |
| text1342 | -0.0304100 | -0.0245165 | 0.0194532 | -0.0120615 |
| text1343 | -0.0078934 | 0.0005730 | -0.0087319 | -0.0010338 |
| text1344 | -0.0175647 | -0.0056119 | 0.0069379 | 0.0053781 |
| text1345 | -0.0112575 | -0.0036575 | 0.0041023 | 0.0032193 |
| text1346 | -0.0083523 | -0.0049881 | -0.0003655 | 0.0023757 |
| text1347 | -0.0050436 | 0.0058937 | -0.0007687 | -0.0013930 |
| text1348 | -0.0199133 | -0.0241320 | 0.0191006 | -0.0060704 |
| text1349 | -0.0182670 | -0.0168302 | 0.0203179 | 0.0003837 |
| text1350 | -0.0253510 | -0.0202274 | 0.0228139 | 0.0030059 |
| text1351 | -0.0148204 | -0.0153495 | 0.0098272 | -0.0029220 |
| text1352 | -0.0106957 | -0.0087951 | -0.0023483 | -0.0002370 |
| text1353 | -0.0236027 | -0.0180741 | 0.0200338 | 0.0004266 |
| text1354 | -0.0123879 | -0.0023628 | 0.0025544 | 0.0048047 |
| text1355 | -0.0127741 | -0.0071121 | 0.0117839 | -0.0072104 |
| text1356 | -0.0157944 | -0.0188414 | 0.0238667 | -0.0031225 |
| text1357 | -0.0138435 | -0.0169481 | 0.0225248 | -0.0061239 |
| text1358 | -0.0374851 | -0.0345558 | 0.0147089 | -0.0104329 |
| text1359 | -0.0156332 | -0.0173687 | 0.0157866 | -0.0090199 |
| text1360 | -0.0238672 | -0.0309938 | 0.0184098 | -0.0136054 |
| text1361 | -0.0278060 | -0.0294771 | 0.0018664 | -0.0108769 |
| text1362 | -0.0108054 | -0.0167107 | 0.0105743 | -0.0070844 |
| text1363 | -0.0162729 | -0.0149582 | 0.0149370 | -0.0052254 |
| text1364 | -0.0169485 | -0.0082989 | 0.0037341 | 0.0063032 |
| text1365 | -0.0255821 | -0.0259972 | 0.0138923 | -0.0039673 |
| text1366 | -0.0139558 | -0.0141919 | 0.0110847 | 0.0002414 |
| text1367 | -0.0172765 | -0.0175659 | 0.0194921 | -0.0102851 |
| text1368 | -0.0108898 | -0.0188032 | 0.0233461 | -0.0085326 |
| text1369 | -0.0046710 | -0.0079571 | 0.0113909 | -0.0039857 |
| text1370 | -0.0270755 | -0.0427760 | 0.0632609 | -0.0284076 |
| text1371 | -0.0209777 | -0.0115480 | 0.0271077 | -0.0166764 |
| text1372 | -0.0083622 | -0.0129381 | 0.0155152 | -0.0115692 |
| text1373 | -0.0324820 | -0.0141705 | 0.0094045 | 0.0039952 |
| text1374 | -0.0179198 | -0.0124267 | 0.0135126 | -0.0032875 |
| text1375 | -0.0250306 | -0.0240338 | 0.0201811 | -0.0018895 |
| text1376 | -0.0294281 | -0.0239447 | 0.0234034 | 0.0012512 |
| text1377 | -0.0296595 | -0.0149764 | 0.0203755 | -0.0007243 |
| text1378 | -0.0011634 | -0.0007094 | 0.0001343 | -0.0004430 |
| text1379 | -0.0210614 | -0.0186492 | 0.0166222 | 0.0067423 |
| text1380 | -0.0192499 | -0.0114692 | 0.0027979 | 0.0026075 |
| text1381 | -0.0263224 | -0.0130773 | 0.0024896 | 0.0070165 |
| text1382 | -0.0282173 | -0.0255885 | 0.0290016 | -0.0041299 |
| text1383 | -0.0090403 | -0.0068360 | 0.0050652 | -0.0003802 |
| text1384 | -0.0160612 | -0.0135646 | 0.0094146 | 0.0046550 |
| text1385 | -0.0224823 | -0.0084191 | 0.0065262 | 0.0005661 |
| text1386 | -0.0252930 | -0.0191878 | 0.0156297 | -0.0000676 |
| text1387 | -0.0200779 | -0.0188203 | 0.0127996 | 0.0014429 |
| text1388 | -0.0209746 | -0.0158269 | 0.0078984 | 0.0069744 |
| text1389 | -0.0180291 | -0.0128333 | 0.0005124 | 0.0053052 |
| text1390 | -0.0121053 | -0.0066820 | 0.0057504 | 0.0020275 |
| text1391 | -0.0453184 | -0.0289202 | 0.0314715 | -0.0259590 |
| text1392 | -0.0253356 | -0.0356443 | 0.0355079 | -0.0215467 |
| text1393 | -0.0300863 | -0.0329645 | 0.0431182 | -0.0164955 |
| text1394 | -0.0346267 | -0.0497580 | 0.0621428 | -0.0218888 |
| text1395 | -0.0302935 | -0.0337548 | 0.0352059 | -0.0144010 |
| text1396 | -0.0280730 | -0.0201772 | 0.0277154 | 0.0019051 |
| text1397 | -0.0169138 | -0.0077611 | 0.0253478 | 0.0008448 |
| text1398 | -0.0239955 | -0.0158739 | 0.0318515 | 0.0005385 |
| text1399 | -0.0182385 | -0.0123515 | 0.0161897 | 0.0026435 |
| text1400 | -0.0149582 | -0.0085011 | 0.0089844 | 0.0003615 |
| text1401 | -0.0189402 | -0.0060880 | 0.0000486 | 0.0036233 |
| text1402 | -0.0134178 | -0.0045263 | 0.0080436 | -0.0004206 |
| text1403 | -0.0101801 | -0.0050896 | 0.0116766 | 0.0085836 |
| text1404 | -0.0313735 | -0.0105271 | 0.0207052 | 0.0106364 |
| text1405 | -0.0255722 | -0.0175560 | 0.0224601 | -0.0073196 |
| text1406 | -0.0245900 | -0.0090380 | 0.0043929 | 0.0093472 |
| text1407 | -0.0221980 | -0.0192938 | 0.0212631 | -0.0008437 |
| text1408 | -0.0251982 | -0.0240122 | 0.0420521 | -0.0261952 |
| text1409 | -0.0203148 | -0.0332502 | 0.0439579 | -0.0239312 |
| text1410 | -0.0159374 | -0.0197010 | 0.0208139 | -0.0130146 |
| text1411 | -0.0424525 | -0.0414119 | 0.0613792 | -0.0212083 |
| text1412 | -0.0186321 | -0.0237309 | 0.0287905 | -0.0012285 |
| text1413 | -0.0319115 | -0.0350255 | 0.0422151 | -0.0165795 |
| text1414 | -0.0179175 | -0.0153722 | 0.0222230 | -0.0108068 |
| text1415 | -0.0319043 | -0.0165855 | 0.0289279 | -0.0061888 |
| text1416 | -0.0405396 | 0.1034778 | -0.0073124 | -0.0888108 |
| text1417 | -0.0283061 | 0.0478516 | 0.0110753 | -0.0490471 |
| text1418 | -0.0429285 | 0.0910602 | 0.0104452 | -0.0723139 |
| text1419 | -0.0366631 | 0.0706994 | -0.0092534 | -0.0669935 |
| text1420 | -0.0100288 | 0.0308001 | -0.0001222 | -0.0126220 |
| text1421 | -0.0405396 | 0.1034778 | -0.0073124 | -0.0888108 |
| text1422 | -0.0283061 | 0.0478516 | 0.0110753 | -0.0490471 |
| text1423 | -0.0429285 | 0.0910602 | 0.0104452 | -0.0723139 |
| text1424 | -0.0366631 | 0.0706994 | -0.0092534 | -0.0669935 |
| text1425 | -0.0100288 | 0.0308001 | -0.0001222 | -0.0126220 |
| text1426 | -0.0138540 | -0.0064632 | 0.0021442 | -0.0032020 |
| text1427 | -0.0187671 | -0.0166677 | 0.0052083 | 0.0048837 |
| text1428 | -0.0188015 | -0.0161834 | 0.0062781 | -0.0054609 |
| text1429 | -0.0128209 | -0.0171851 | 0.0146064 | -0.0113797 |
| text1430 | -0.0263307 | -0.0275192 | 0.0145038 | -0.0019497 |
| text1431 | -0.0258309 | -0.0305303 | 0.0226093 | -0.0095027 |
| text1432 | -0.0229858 | -0.0188972 | 0.0228609 | -0.0017898 |
| text1433 | -0.0085748 | -0.0095649 | 0.0088374 | -0.0038393 |
| text1434 | -0.0335303 | -0.0160602 | 0.0127772 | 0.0113703 |
| text1435 | -0.0155297 | -0.0107261 | 0.0137074 | 0.0049370 |
| text1436 | -0.0229171 | -0.0300761 | 0.0207464 | -0.0097378 |
| text1437 | -0.0241654 | -0.0261816 | 0.0153819 | -0.0017239 |
| text1438 | -0.0489894 | -0.0481185 | 0.0289188 | -0.0169174 |
| text1439 | -0.0250466 | -0.0154327 | 0.0117028 | -0.0065938 |
| text1440 | -0.0520046 | -0.0583742 | 0.0662490 | -0.0504839 |
| text1441 | -0.0334258 | -0.0393509 | 0.0371494 | -0.0235328 |
| text1442 | -0.0327471 | -0.0393492 | 0.0406206 | -0.0202905 |
| text1443 | -0.0277549 | -0.0257793 | 0.0298059 | -0.0185247 |
| text1444 | -0.0269057 | -0.0249537 | 0.0342853 | -0.0057383 |
| text1445 | -0.0398505 | -0.0400880 | 0.0362299 | -0.0203891 |
| text1446 | -0.0322838 | -0.0288647 | 0.0217970 | -0.0087234 |
| text1447 | -0.0168690 | -0.0186688 | 0.0209756 | -0.0132781 |
| text1448 | -0.0172030 | -0.0046078 | 0.0008116 | 0.0049950 |
| text1449 | -0.0207689 | -0.0115445 | 0.0116389 | 0.0012889 |
| text1450 | -0.0146050 | -0.0106660 | 0.0073105 | 0.0028472 |
| text1451 | -0.0090539 | -0.0066361 | 0.0060523 | -0.0021878 |
| text1452 | -0.0054197 | 0.0031217 | 0.0024780 | -0.0019646 |
| text1453 | -0.0225591 | -0.0431354 | 0.0494379 | -0.0250713 |
| text1454 | -0.0398156 | -0.0359628 | 0.0492129 | -0.0060549 |
| text1455 | -0.0111392 | -0.0185834 | 0.0233839 | -0.0095273 |
| text1456 | -0.0283824 | -0.0605737 | 0.0721800 | -0.0341658 |
| text1457 | -0.0048972 | -0.0133059 | 0.0162561 | -0.0070454 |
| text1458 | -0.0280098 | -0.0185220 | 0.0092738 | 0.0040364 |
| text1459 | -0.0258793 | -0.0131391 | 0.0180048 | 0.0078444 |
| text1460 | -0.0222697 | -0.0190342 | 0.0231783 | -0.0136937 |
| text1461 | -0.0311645 | -0.0079515 | 0.0039554 | -0.0004442 |
| text1462 | -0.0254623 | -0.0215802 | 0.0097058 | -0.0054261 |
| text1463 | -0.0065563 | -0.0029828 | -0.0001848 | 0.0011721 |
| text1464 | -0.0122730 | -0.0092948 | 0.0032985 | -0.0007902 |
| text1465 | -0.0398933 | -0.0240134 | 0.0226183 | 0.0076573 |
| text1466 | -0.0182342 | -0.0106780 | 0.0117423 | -0.0024338 |
| text1467 | -0.0296004 | -0.0191827 | 0.0214830 | -0.0001373 |
| text1468 | -0.0717713 | -0.0122703 | 0.0406497 | -0.0389009 |
| text1469 | -0.0048696 | -0.0011797 | 0.0014782 | -0.0006533 |
| text1470 | -0.0268300 | -0.0175015 | 0.0134075 | -0.0086325 |
| text1471 | -0.0117531 | -0.0020362 | 0.0015143 | 0.0032228 |
This Doc-topic sim. table shows the link between each text and each topic. For example, text1 most relevant to dimension 2(topic 2).
| Dimension | Topic strength |
|---|---|
| dimension1 | 183.84893 |
| dimension2 | 85.97943 |
| dimension3 | 81.27583 |
| dimension4 | 73.82645 |
This Topic strength table represent the strength of each topic. Except for the topic 1, topic 2 has the largest strength.
| dimension1 | dimension2 | dimension3 | dimension4 | |
|---|---|---|---|---|
| today | -0.0569966 | 0.0126785 | -0.0485503 | -0.0155983 |
| artificial | -0.0303165 | 0.0683780 | -0.0026655 | -0.0039735 |
| intelligence | -0.0516758 | 0.1320332 | 0.0036350 | -0.0102737 |
| help | -0.0253760 | 0.0020966 | 0.0032362 | -0.0121982 |
| doctor | -0.0138459 | 0.0036630 | 0.0071495 | -0.0041132 |
| diagnose | -0.0058367 | 0.0095565 | 0.0023165 | -0.0030806 |
| patient | -0.0130458 | 0.0135236 | 0.0042128 | -0.0092575 |
| pilot | -0.0023414 | 0.0010596 | -0.0031627 | 0.0018573 |
| fly | -0.0104628 | 0.0055722 | -0.0042352 | 0.0232152 |
| commercial | -0.0024783 | 0.0036116 | -0.0043273 | -0.0011694 |
This Terms-topic sim. table shows the link between each term and each topic. For example, the term “artificial” most relevant to dimension 2(topic 2).
The first dimension of LSA is often correlated to (of little
information and often not represented) the document length and the
frequency of the term. We build a scatter-plot between the document
length and Dimension 1 to demonstrate it.
Then we check the top words for dimension2, 3, and 4. For each dimension, we look at the five terms with the largest values and the five ones with the lowest value (i.e., largest negative value).
| value | |
|---|---|
| ai | 0.5115474 |
| human | 0.3948890 |
| robot | 0.1953350 |
| machine | 0.1781869 |
| datum | 0.1514245 |
| feel | -0.1080379 |
| climate | -0.1133600 |
| life | -0.1259553 |
| love | -0.2119132 |
| people | -0.2781561 |
Dimension 2 is associated positively with word like “ai”, “human”, “robot”, “machine” ,“datum”, and negatively associated with “feel”, “climate”, “life”, “love”, “people”.
| value | |
|---|---|
| people | 0.2709439 |
| love | 0.2628304 |
| robot | 0.1889753 |
| feel | 0.1307637 |
| life | 0.1043617 |
| forest | -0.1520730 |
| year | -0.1816735 |
| energy | -0.1888159 |
| carbon | -0.1949385 |
| climate | -0.2867198 |
Dimension 3 is associated positively with word like “people”, “love”, “robot”, “fell” ,“life”, and negatively associated with “forest”, “year”, “energy”, “carbon”, “climate”.
| value | |
|---|---|
| robot | 0.7714658 |
| thing | 0.1265223 |
| rule | 0.1009858 |
| move | 0.0932420 |
| start | 0.0730760 |
| datum | -0.0920711 |
| human | -0.1281984 |
| love | -0.1326988 |
| people | -0.1940262 |
| ai | -0.3584263 |
Dimension 4 is associated positively with word like “robot”, “thing”, “rule”, “move” ,“start”, and negatively associated with “datum”, “human”, “love”, “people”, “ai”.
In order to check the relation between LSA and category of text, we combine the LSA result with the category of document and represent every text on these two following plots.
Left plot:x-axis is dimension 2 and y-axis is dimension3. According to this plot, most of the texts of category “Climate change” are negatively associated with dimension3. Most of the texts of category “Relationships” are positively associated with dimension3. And most of the category “AI” are positively associated with dimension2.
Right plot:x-axis is dimension 3 and y-axis is dimension4. According to this plot, most texts of category “AI” are positively associated with dimension4, most of the texts of category “Climate change” are negatively associated with dimension3, and most of the texts of category “Relationships” are positively associated with dimension3.
Repeat the LSA with the TF-IDF as DTM. Check whether the weighted frequency can make the LSA results better interpret texts.
| dimension1 | dimension2 | dimension3 | dimension4 | |
|---|---|---|---|---|
| text1 | -0.0422496 | -0.0329279 | -0.0320857 | -0.0394412 |
| text2 | -0.0275697 | -0.0224974 | -0.0249187 | -0.0308737 |
| text3 | -0.0352744 | -0.0394390 | -0.0573503 | -0.0317769 |
| text4 | -0.0387940 | -0.0440947 | -0.0690456 | -0.0479835 |
| text5 | -0.0425726 | -0.0337124 | -0.0456903 | -0.0725318 |
| text6 | -0.0213413 | -0.0274721 | -0.0331742 | -0.0599822 |
| text7 | -0.0372246 | -0.0300740 | -0.0267797 | -0.0323277 |
| text8 | -0.0367941 | -0.0212970 | -0.0162914 | -0.0250740 |
| text9 | -0.0363915 | -0.0263333 | -0.0233207 | -0.0359802 |
| text10 | -0.0308465 | -0.0253658 | -0.0140726 | -0.0261814 |
| text11 | -0.0402360 | -0.0229583 | -0.0268662 | -0.0377900 |
| text12 | -0.0375956 | -0.0272690 | -0.0224744 | -0.0247567 |
| text13 | -0.0245463 | -0.0025653 | -0.0091655 | -0.0169218 |
| text14 | -0.0252603 | -0.0124116 | -0.0122370 | -0.0152749 |
| text15 | -0.0001732 | -0.0000771 | 0.0001284 | 0.0000621 |
| text16 | -0.0308109 | -0.0184768 | -0.0131101 | -0.0031044 |
| text17 | -0.0214623 | -0.0090715 | 0.0034872 | -0.0065740 |
| text18 | -0.0271418 | -0.0101689 | 0.0100212 | 0.0053525 |
| text19 | -0.0211285 | -0.0092654 | 0.0079649 | -0.0076075 |
| text20 | -0.0156512 | -0.0071335 | 0.0095319 | -0.0009809 |
| text21 | -0.0174472 | -0.0060270 | 0.0004573 | -0.0039779 |
| text22 | -0.0246188 | -0.0163992 | -0.0185785 | -0.0164401 |
| text23 | -0.0247240 | -0.0173729 | -0.0138138 | -0.0114032 |
| text24 | -0.0288989 | -0.0253290 | -0.0306215 | 0.0164976 |
| text25 | -0.0417036 | -0.0440674 | -0.0693023 | 0.0400973 |
| text26 | -0.0326873 | -0.0129338 | -0.0241456 | -0.0097452 |
| text27 | -0.0025679 | -0.0001549 | 0.0000837 | -0.0003927 |
| text28 | -0.0220737 | -0.0109435 | -0.0171714 | -0.0223362 |
| text29 | -0.0323942 | -0.0324238 | -0.0258192 | -0.0386713 |
| text30 | -0.0328217 | 0.0069878 | -0.0199073 | -0.0178160 |
| text31 | -0.0254942 | -0.0209568 | -0.0458023 | -0.0111945 |
| text32 | -0.0217534 | -0.0179579 | -0.0255266 | -0.0251244 |
| text33 | -0.0077153 | -0.0024128 | -0.0054185 | -0.0120708 |
| text34 | -0.0285262 | -0.0315279 | -0.0226315 | -0.0496563 |
| text35 | -0.0232184 | -0.0166659 | -0.0237707 | -0.0301823 |
| text36 | -0.0262233 | -0.0230341 | -0.0085872 | -0.0250824 |
| text37 | -0.0304031 | -0.0265574 | -0.0262080 | -0.0561061 |
| text38 | -0.0205409 | -0.0133237 | -0.0154653 | -0.0080555 |
| text39 | -0.0152019 | -0.0066998 | -0.0012370 | -0.0046716 |
| text40 | -0.0244961 | -0.0150788 | -0.0092616 | -0.0227058 |
| text41 | -0.0250216 | -0.0178983 | -0.0075760 | -0.0134588 |
| text42 | -0.0213407 | -0.0161356 | -0.0025263 | -0.0153482 |
| text43 | -0.0154167 | -0.0081825 | 0.0018929 | -0.0034267 |
| text44 | -0.0315698 | -0.0094676 | 0.0004606 | -0.0182212 |
| text45 | -0.0234959 | -0.0055520 | -0.0118687 | -0.0179219 |
| text46 | -0.0038574 | -0.0021085 | -0.0032150 | -0.0045033 |
| text47 | -0.0476029 | -0.0299750 | -0.0258681 | -0.0646642 |
| text48 | -0.0457408 | 0.0006985 | -0.0353752 | -0.0467143 |
| text49 | -0.0420311 | -0.0328334 | 0.0375300 | -0.0268927 |
| text50 | -0.0230294 | -0.0263774 | -0.0196203 | -0.0488351 |
| text51 | -0.0165408 | 0.0013677 | 0.0100517 | -0.0021014 |
| text52 | -0.0192817 | -0.0033588 | 0.0171124 | 0.0007307 |
| text53 | -0.0176920 | -0.0025925 | 0.0071863 | -0.0002465 |
| text54 | -0.0448211 | -0.0118129 | -0.0146718 | -0.0466950 |
| text55 | -0.0185272 | -0.0025597 | 0.0002995 | -0.0077944 |
| text56 | -0.0275046 | -0.0021669 | 0.0001981 | -0.0069063 |
| text57 | -0.0002411 | -0.0000942 | 0.0001310 | -0.0000092 |
| text58 | -0.0382946 | -0.0163995 | 0.0007255 | -0.0226702 |
| text59 | -0.0165774 | -0.0028263 | 0.0003179 | -0.0076998 |
| text60 | -0.0207104 | 0.0019542 | -0.0035941 | -0.0007140 |
| text61 | -0.0345667 | 0.0412849 | -0.0187940 | -0.0068525 |
| text62 | -0.0304427 | 0.0326191 | -0.0124245 | 0.0022325 |
| text63 | -0.0359581 | 0.0165657 | -0.0183056 | 0.0000682 |
| text64 | -0.0349514 | -0.0233243 | -0.0301906 | -0.0264169 |
| text65 | -0.0351091 | -0.0107101 | -0.0258786 | -0.0098813 |
| text66 | -0.0285421 | -0.0129534 | -0.0129755 | -0.0117214 |
| text67 | -0.0430634 | -0.0538184 | -0.0940910 | 0.0790135 |
| text68 | -0.0333620 | -0.0360427 | -0.0390475 | 0.0500353 |
| text69 | -0.0358999 | -0.0125041 | -0.0450806 | 0.0171264 |
| text70 | -0.0265458 | -0.0180285 | -0.0125030 | -0.0096695 |
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| text1329 | -0.0171304 | -0.0075659 | 0.0115213 | 0.0060447 |
| text1330 | -0.0222916 | -0.0071053 | 0.0118147 | 0.0058899 |
| text1331 | -0.0236364 | -0.0145963 | 0.0350382 | 0.0061551 |
| text1332 | -0.0288623 | -0.0229157 | 0.0721740 | 0.0151759 |
| text1333 | -0.0258637 | -0.0138873 | 0.0433895 | 0.0110590 |
| text1334 | -0.0023720 | -0.0012391 | 0.0008529 | -0.0005517 |
| text1335 | -0.0156818 | -0.0023940 | 0.0061661 | 0.0004349 |
| text1336 | -0.0134877 | 0.0049014 | 0.0054709 | 0.0066651 |
| text1337 | -0.0214546 | -0.0074741 | 0.0090005 | 0.0100370 |
| text1338 | -0.0203300 | -0.0108516 | 0.0054916 | 0.0151831 |
| text1339 | -0.0046561 | 0.0002105 | 0.0034609 | 0.0007325 |
| text1340 | -0.0208681 | -0.0131218 | 0.0194035 | 0.0046350 |
| text1341 | -0.0099517 | -0.0011642 | 0.0078330 | 0.0030831 |
| text1342 | -0.0274237 | -0.0111208 | 0.0221667 | 0.0096249 |
| text1343 | -0.0104811 | 0.0034198 | 0.0047793 | -0.0002065 |
| text1344 | -0.0183651 | -0.0108382 | 0.0050208 | 0.0001450 |
| text1345 | -0.0168909 | -0.0094141 | 0.0091423 | 0.0047790 |
| text1346 | -0.0101880 | -0.0023519 | 0.0062977 | -0.0001711 |
| text1347 | -0.0060476 | -0.0025775 | 0.0003926 | -0.0025569 |
| text1348 | -0.0199178 | -0.0149241 | 0.0510025 | 0.0112930 |
| text1349 | -0.0207668 | -0.0188404 | 0.0484058 | 0.0084296 |
| text1350 | -0.0250540 | -0.0185392 | 0.0384077 | 0.0092102 |
| text1351 | -0.0155849 | -0.0124551 | 0.0322648 | 0.0077263 |
| text1352 | -0.0091374 | -0.0058421 | 0.0166754 | 0.0026362 |
| text1353 | -0.0262845 | -0.0202025 | 0.0626862 | 0.0147606 |
| text1354 | -0.0121905 | -0.0077810 | 0.0167179 | 0.0065283 |
| text1355 | -0.0175985 | -0.0129004 | 0.0263908 | 0.0048875 |
| text1356 | -0.0181389 | -0.0165556 | 0.0477068 | 0.0085469 |
| text1357 | -0.0180117 | -0.0201083 | 0.0517978 | 0.0115285 |
| text1358 | -0.0314476 | -0.0075955 | 0.0414872 | 0.0076994 |
| text1359 | -0.0190992 | -0.0092232 | 0.0322768 | 0.0035414 |
| text1360 | -0.0255813 | -0.0054276 | 0.0355909 | 0.0059357 |
| text1361 | -0.0274213 | -0.0008209 | 0.0365301 | 0.0055831 |
| text1362 | -0.0086179 | -0.0044916 | 0.0140517 | 0.0032662 |
| text1363 | -0.0176532 | -0.0071213 | 0.0115839 | 0.0030242 |
| text1364 | -0.0160607 | -0.0076934 | 0.0121910 | 0.0022804 |
| text1365 | -0.0196449 | -0.0077007 | 0.0148938 | 0.0033588 |
| text1366 | -0.0143716 | -0.0087438 | 0.0191285 | 0.0056031 |
| text1367 | -0.0196434 | -0.0094279 | 0.0222537 | 0.0034856 |
| text1368 | -0.0086982 | -0.0048728 | 0.0151825 | 0.0027900 |
| text1369 | -0.0045530 | -0.0027982 | 0.0062111 | 0.0006941 |
| text1370 | -0.0219227 | -0.0196646 | 0.0472492 | 0.0074813 |
| text1371 | -0.0208764 | -0.0124188 | 0.0201754 | 0.0009754 |
| text1372 | -0.0045387 | -0.0036443 | 0.0089064 | 0.0005189 |
| text1373 | -0.0279274 | -0.0133612 | 0.0196186 | 0.0026106 |
| text1374 | -0.0185426 | -0.0114527 | 0.0168776 | 0.0020348 |
| text1375 | -0.0186296 | -0.0098700 | 0.0178121 | 0.0036093 |
| text1376 | -0.0256559 | -0.0123573 | 0.0250706 | 0.0053335 |
| text1377 | -0.0341733 | -0.0145620 | 0.0323973 | 0.0095320 |
| text1378 | -0.0013368 | -0.0000752 | 0.0007296 | -0.0003470 |
| text1379 | -0.0275008 | -0.0186571 | 0.0350006 | 0.0157030 |
| text1380 | -0.0227336 | -0.0122630 | 0.0312561 | 0.0074033 |
| text1381 | -0.0271434 | -0.0119445 | 0.0270816 | 0.0070745 |
| text1382 | -0.0289924 | -0.0193119 | 0.0501115 | 0.0134813 |
| text1383 | -0.0147569 | -0.0085744 | 0.0235488 | 0.0052632 |
| text1384 | -0.0174883 | -0.0082715 | 0.0119206 | 0.0071318 |
| text1385 | -0.0172456 | -0.0076378 | 0.0140487 | 0.0036910 |
| text1386 | -0.0186192 | -0.0100199 | 0.0154112 | 0.0053159 |
| text1387 | -0.0207576 | -0.0109796 | 0.0239896 | 0.0121479 |
| text1388 | -0.0265772 | -0.0073118 | 0.0224329 | 0.0154615 |
| text1389 | -0.0137747 | -0.0027725 | 0.0091263 | 0.0036001 |
| text1390 | -0.0092731 | -0.0030433 | 0.0046728 | 0.0026771 |
| text1391 | -0.0320523 | -0.0344569 | 0.1407007 | 0.0186013 |
| text1392 | -0.0185421 | -0.0243537 | 0.0970342 | 0.0165547 |
| text1393 | -0.0193515 | -0.0220953 | 0.0762141 | 0.0093244 |
| text1394 | -0.0242607 | -0.0313627 | 0.1174021 | 0.0181020 |
| text1395 | -0.0199014 | -0.0195033 | 0.0611362 | 0.0101504 |
| text1396 | -0.0263855 | -0.0275125 | 0.0847913 | 0.0150223 |
| text1397 | -0.0152298 | -0.0237583 | 0.0745102 | 0.0106841 |
| text1398 | -0.0146808 | -0.0170921 | 0.0511883 | 0.0065677 |
| text1399 | -0.0107480 | -0.0099173 | 0.0198269 | 0.0067846 |
| text1400 | -0.0168060 | -0.0170032 | 0.0804844 | 0.0108055 |
| text1401 | -0.0080115 | -0.0059210 | 0.0181123 | 0.0012585 |
| text1402 | -0.0172274 | -0.0193586 | 0.0644531 | 0.0112668 |
| text1403 | -0.0075528 | -0.0063734 | 0.0195733 | 0.0043290 |
| text1404 | -0.0241621 | -0.0196769 | 0.0095680 | 0.0134103 |
| text1405 | -0.0192720 | -0.0172307 | 0.0120371 | 0.0077019 |
| text1406 | -0.0201197 | -0.0140707 | 0.0166962 | 0.0091761 |
| text1407 | -0.0256287 | -0.0199207 | 0.0216180 | 0.0112929 |
| text1408 | -0.0198045 | -0.0180369 | 0.0357508 | 0.0090264 |
| text1409 | -0.0214027 | -0.0133113 | 0.0381165 | 0.0080108 |
| text1410 | -0.0099786 | -0.0057152 | 0.0147671 | 0.0014337 |
| text1411 | -0.0388965 | -0.0293422 | 0.0615207 | 0.0078692 |
| text1412 | -0.0165393 | -0.0122713 | 0.0248021 | 0.0062065 |
| text1413 | -0.0253738 | -0.0132514 | 0.0361920 | 0.0095223 |
| text1414 | -0.0209431 | -0.0159577 | 0.0362313 | 0.0042816 |
| text1415 | -0.0236067 | -0.0173798 | 0.0272316 | 0.0035329 |
| text1416 | -0.0368629 | -0.0263240 | -0.0513811 | -0.0950757 |
| text1417 | -0.0259037 | -0.0219388 | -0.0167730 | -0.0547199 |
| text1418 | -0.0368457 | -0.0280660 | -0.0328888 | -0.0797909 |
| text1419 | -0.0361311 | -0.0085427 | -0.0430633 | -0.0817451 |
| text1420 | -0.0071000 | -0.0051373 | -0.0085707 | -0.0121793 |
| text1421 | -0.0368629 | -0.0263240 | -0.0513811 | -0.0950757 |
| text1422 | -0.0259037 | -0.0219388 | -0.0167730 | -0.0547199 |
| text1423 | -0.0368457 | -0.0280660 | -0.0328888 | -0.0797909 |
| text1424 | -0.0361311 | -0.0085427 | -0.0430633 | -0.0817451 |
| text1425 | -0.0071000 | -0.0051373 | -0.0085707 | -0.0121793 |
| text1426 | -0.0136770 | -0.0056069 | 0.0091418 | 0.0027283 |
| text1427 | -0.0234082 | -0.0096756 | 0.0297016 | 0.0122550 |
| text1428 | -0.0201513 | -0.0022685 | 0.0193452 | 0.0033832 |
| text1429 | -0.0109535 | -0.0037946 | 0.0085212 | -0.0008822 |
| text1430 | -0.0246360 | -0.0213953 | 0.0665742 | 0.0141814 |
| text1431 | -0.0216925 | -0.0162035 | 0.0521358 | 0.0117723 |
| text1432 | -0.0221570 | -0.0197074 | 0.0270826 | 0.0183850 |
| text1433 | -0.0085360 | -0.0061643 | 0.0138918 | 0.0040306 |
| text1434 | -0.0290395 | -0.0183560 | 0.0358862 | 0.0094803 |
| text1435 | -0.0128230 | -0.0091225 | 0.0188358 | 0.0049251 |
| text1436 | -0.0226302 | -0.0146832 | 0.0381589 | 0.0072173 |
| text1437 | -0.0226699 | -0.0110577 | 0.0294877 | 0.0063232 |
| text1438 | -0.0343363 | -0.0083079 | 0.0286105 | 0.0070472 |
| text1439 | -0.0257373 | -0.0141723 | 0.0234504 | 0.0007082 |
| text1440 | -0.0392825 | -0.0226554 | 0.0629511 | 0.0055264 |
| text1441 | -0.0172997 | -0.0113387 | 0.0245082 | 0.0021510 |
| text1442 | -0.0250266 | -0.0163937 | 0.0349318 | 0.0082551 |
| text1443 | -0.0233034 | -0.0117810 | 0.0307270 | 0.0028201 |
| text1444 | -0.0262489 | -0.0152228 | 0.0354920 | 0.0063862 |
| text1445 | -0.0324450 | -0.0175934 | 0.0350503 | 0.0038955 |
| text1446 | -0.0303233 | -0.0159270 | 0.0375620 | 0.0043827 |
| text1447 | -0.0141617 | -0.0080686 | 0.0181165 | 0.0013674 |
| text1448 | -0.0155422 | -0.0057841 | 0.0114764 | 0.0041780 |
| text1449 | -0.0252204 | -0.0154459 | 0.0254361 | 0.0061764 |
| text1450 | -0.0177621 | -0.0080365 | 0.0234353 | 0.0076322 |
| text1451 | -0.0179631 | -0.0098150 | 0.0208695 | 0.0018190 |
| text1452 | -0.0081377 | -0.0039232 | 0.0077366 | 0.0017474 |
| text1453 | -0.0127695 | -0.0093685 | 0.0206262 | 0.0038767 |
| text1454 | -0.0210029 | -0.0148554 | 0.0205513 | 0.0027548 |
| text1455 | -0.0111173 | -0.0100176 | 0.0172857 | 0.0038602 |
| text1456 | -0.0176743 | -0.0147119 | 0.0336330 | 0.0073582 |
| text1457 | -0.0038202 | -0.0033638 | 0.0078626 | 0.0019853 |
| text1458 | -0.0214738 | -0.0107076 | 0.0219580 | 0.0078269 |
| text1459 | -0.0238631 | -0.0169482 | 0.0258979 | 0.0073586 |
| text1460 | -0.0157018 | -0.0087490 | 0.0120742 | -0.0013495 |
| text1461 | -0.0316158 | -0.0141059 | 0.0248640 | 0.0030479 |
| text1462 | -0.0225950 | -0.0069671 | 0.0189227 | -0.0013091 |
| text1463 | -0.0067600 | -0.0036397 | 0.0049023 | 0.0002011 |
| text1464 | -0.0127280 | -0.0025830 | 0.0106006 | 0.0011827 |
| text1465 | -0.0290737 | -0.0100324 | 0.0204337 | 0.0101260 |
| text1466 | -0.0162131 | -0.0089068 | 0.0189332 | 0.0077427 |
| text1467 | -0.0222891 | -0.0097112 | 0.0177865 | 0.0055085 |
| text1468 | -0.0480732 | -0.0210247 | 0.0152098 | -0.0214661 |
| text1469 | -0.0029752 | -0.0017168 | 0.0042393 | 0.0007534 |
| text1470 | -0.0296134 | -0.0113073 | 0.0301954 | -0.0039040 |
| text1471 | -0.0101514 | -0.0033470 | 0.0048832 | -0.0014561 |
This Doc-topic sim. table shows the link between each text and each topic. For example, text3 most relevant to dimension 3(topic 3).
| Dimension | Topic strength |
|---|---|
| dimension1 | 148.71774 |
| dimension2 | 92.26676 |
| dimension3 | 83.34253 |
| dimension4 | 79.22164 |
This Topic strength table represent the strength of each dimension(topic). For example, dimension 4 has the smallest strength.
| dimension1 | dimension2 | dimension3 | dimension4 | |
|---|---|---|---|---|
| today | -0.0536687 | 0.0095691 | -0.0068271 | -0.0241286 |
| artificial | -0.0415968 | -0.0378650 | -0.0482462 | -0.0482060 |
| intelligence | -0.0645813 | -0.0679693 | -0.0779669 | -0.0735150 |
| help | -0.0327216 | -0.0080277 | 0.0110845 | -0.0074941 |
| doctor | -0.0239033 | -0.0187716 | 0.0082665 | -0.0113366 |
| diagnose | -0.0133458 | -0.0141806 | -0.0075820 | -0.0165815 |
| patient | -0.0277309 | -0.0236963 | -0.0039323 | -0.0299937 |
| pilot | -0.0067898 | 0.0018689 | -0.0036318 | 0.0001526 |
| fly | -0.0204832 | -0.0025275 | -0.0187381 | 0.0240834 |
| commercial | -0.0072157 | 0.0025301 | -0.0057654 | -0.0052020 |
This Terms-topic sim. table shows the link between each term and each topic. For example, the terms “artificial” and “intelligence” are both most relevant to dimension 3(topic 3).
We also check the top words for dimension2, 3, and 4 of LSA on TF-IDF.
| value | |
|---|---|
| forest | 0.2176291 |
| carbon | 0.2084673 |
| climate | 0.1770268 |
| emission | 0.1768026 |
| energy | 0.1434831 |
| human | -0.0782871 |
| computer | -0.0820833 |
| machine | -0.0828424 |
| ai | -0.1643167 |
| robot | -0.2829436 |
For this LSA, dimension 2 is associated positively with word like “forest”, “carbon”, “climate”, “emission” ,“energy”, and negatively associated with “human”, “computer”, “machine”, “ai”, “robot”.
| value | |
|---|---|
| regret | 0.2568698 |
| sex | 0.2312091 |
| woman | 0.1600525 |
| love | 0.1539985 |
| man | 0.1155972 |
| datum | -0.0791178 |
| machine | -0.0826875 |
| rule | -0.0872609 |
| ai | -0.2548430 |
| robot | -0.4413087 |
Dimension 3 is associated positively with word like “regret”, “sex”, “woman”, “love” ,“man”, and negatively associated with “datum”, “machine”, “rule”, “ai”, “robot”.
| value | |
|---|---|
| robot | 0.6214054 |
| rule | 0.1322063 |
| bee | 0.1247338 |
| seaweed | 0.1094784 |
| coral | 0.1068444 |
| machine | -0.0782485 |
| human | -0.0878439 |
| company | -0.1099502 |
| datum | -0.1467530 |
| ai | -0.4063409 |
Dimension 4 is associated positively with word like “robot”, “rule”, “bee”, “seaweed” ,“coral”, and negatively associated with “machine”, “human”, “company”, “datum”, “ai”.
We also check the relation between this LSA result and category of text, we combine the LSA result with the category of document and represent every text on these two following plots.
Left plot:x-axis is dimension 2 and y-axis is dimension3. According to this plot, most of the texts of category “Climate change” are positively associated with dimension2. Most of the texts of category “Relationships” are positively associated with dimension3. And most of the category “AI” are negatively associated with dimension2 and dimension3.
Right plot:x-axis is dimension 3 and y-axis is dimension4. According to this plot, most texts of category “AI” are associated with dimension4. But part of texts of category “AI” are negatively associated with dimension 4 and part of texts of category “AI” are positively associated with dimension 4. The pattern is not very clear.
We now turn to Latent Dirichlet Association (LDA). LDA is a Bayesian model for topic modeling: generative model. It is also to discover topics in a collection of documents. For the illustration, we will make 4 topics again.
First, I check the top5 words in each dimension. For example, the top5 terms for topic 1 are “climate”, “year”, “make”, “change” and “energy”.| Topic 1 | Topic 2 | Topic 3 | Topic 4 |
|---|---|---|---|
| climate | people | people | robot |
| year | human | love | thing |
| make | ai | feel | time |
| change | make | life | make |
| energy | thing | thing | brain |
| Topic | number of documents |
|---|---|
| 1 | 316 |
| 2 | 395 |
| 3 | 439 |
| 4 | 321 |
Then I use the topic_diagnostics function to diagnose the prominence, coherence and exclusivity of each dimension.
## topic_num topic_size mean_token_length dist_from_corpus tf_df_dist
## 1 1 3383.187 5.6 0.4216740 19.70057
## 2 2 3644.634 5.1 0.3793068 22.85747
## 3 3 4124.771 5.2 0.3999282 21.41908
## 4 4 3892.408 4.4 0.4113173 21.01260
## doc_prominence topic_coherence topic_exclusivity
## 1 418 -86.57526 8.904578
## 2 541 -73.97054 8.708857
## 3 574 -77.63556 8.381961
## 4 435 -67.67438 8.289089
Topic 3 has the largest prominence. Topic 4 has the largest topic coherence and Topic 1 has the smallest topic coherence. Topic 1 has the largest topic exclusivity and Topic 4 has the smallest topic exclusivity.
Topic1 focus on terms like “climate”, “change”, “energy”, “water”.
Topic2 focus on terms like”people”, “ai”, “work”, “technology”. Topic3
focus on terms like”love”, “life”, “woman”, “relationship”. Topic4 focus
on terms like “robot”, “thing”, “brain”, “human”.
The Climate change related documents mainly talk about Topic 1. The Relationships related documents mainly talk about Topic3. The AI related documents mainly talk about Topic 2 and Topic4.
Except for the LSA and LDA, we also want to use embedding to analyze the TED video transcripts. Embedding refers to the representation of elements (documents or tokens) in a Vector Space Model. First we build a word embedding and then we build document embedding that inherits the word co-occurrence. properties.
The objective is to find a word embedding that reflects the co-occurrences. We use the fcm function from quanteta to compute word co-occurrence.
## Feature co-occurrence matrix of: 6 by 15,045 features.
## features
## features today artificial intelligence diagnose fly commercial aircraft
## today 28 8 8 4 5 0 1
## artificial 8 30 170 2 2 0 0
## intelligence 8 170 78 1 0 0 0
## diagnose 4 2 1 0 1 1 1
## fly 5 2 0 1 8 2 5
## commercial 0 0 0 1 2 0 3
## features
## features city predict traffic
## today 5 2 0
## artificial 0 3 0
## intelligence 0 6 0
## diagnose 1 1 0
## fly 1 1 0
## commercial 1 1 1
## [ reached max_nfeat ... 15,035 more features ]
Here we show the first several rows of the result. For example, the co-occurrence of word artificial and intelligence is large(170). But the co-occurrence of word fly and intelligence is very small(0).
## INFO [12:29:55.823] epoch 1, loss 0.0445
## INFO [12:29:55.903] epoch 2, loss 0.0367
## INFO [12:29:55.973] epoch 3, loss 0.0343
## INFO [12:29:56.039] epoch 4, loss 0.0330
## INFO [12:29:56.106] epoch 5, loss 0.0322
## INFO [12:29:56.173] epoch 6, loss 0.0318
## INFO [12:29:56.239] epoch 7, loss 0.0314
## INFO [12:29:56.306] epoch 8, loss 0.0312
## INFO [12:29:56.372] epoch 9, loss 0.0310
## INFO [12:29:56.439] epoch 10, loss 0.0309
For the visualization, we draw two plots. The first one is plotting the vectors of the 100 most used words (100 largest frequencies). The second one is plotting all the words but only labeling part of it.
First plot: We use the geom_text_repel() function to avoid overlapping labels between data points. Some labels show a black line next to them, pointing to the location of the point marked by that label. Words that are close on the map are often used together. For example, the word “machine” and “intelligence” are close which means they are usually used together. And the word “man” and “woman” are close so they are also usually used together.
Second plot: We also want to check the distribution of all words so we draw this second plot. This plot shows all the used words in grey and labels a part of words for illustration. According to the plot, the word “warm” and “temperature” are close so these two words are usually used together.
We now build the document embedding by computing the centroids of the documents.
| dimension1 | dimension2 | |
|---|---|---|
| today | -0.7912934 | 2.2696258 |
| artificial | 1.0067433 | 1.3543759 |
| intelligence | 1.4609250 | 1.7702632 |
| help | 0.2675278 | 1.2395821 |
| doctor | -0.1246391 | 0.6178340 |
| diagnose | -0.6098596 | -0.0223995 |
| patient | -0.4179482 | 0.5169117 |
| pilot | 0.3673782 | -0.3877739 |
| fly | 0.4031451 | 0.3916120 |
| commercial | 0.5305939 | -0.2669108 |
| aircraft | 0.6318098 | -0.5813117 |
| city | -1.0507722 | 1.4355099 |
| planner | -0.6161024 | -0.7257687 |
| predict | -0.1915459 | 0.9986805 |
| traffic | -0.4747728 | -0.0681975 |
| matter | 0.3644152 | 1.3631938 |
| ais | 0.5050700 | 0.0019643 |
| computer | 1.6623174 | 2.2142813 |
| scientist | 0.0252842 | 1.1262502 |
| design | 0.5685137 | 1.5617515 |
| artificial | 1.0067433 | 1.3543759 |
| intelligence | 1.4609250 | 1.7702632 |
| self-taught | -0.0712951 | -0.1945536 |
| work | 0.3632400 | 3.7634488 |
| simple | 0.3471166 | 1.2454114 |
| set | 0.2194668 | 1.3799813 |
| instruction | 0.3630714 | -0.3031281 |
| create | 0.0601281 | 2.3934684 |
| unique | -0.1438308 | 0.4274753 |
| array | -0.0063147 | -0.2812444 |
| rule | 1.6917308 | 0.7052268 |
| strategy | -0.2310618 | 0.1535506 |
| machine | 1.5376507 | 2.0500463 |
| learn | 1.3605571 | 2.6998712 |
| way | 0.0135613 | 1.7143029 |
| build | -0.0813452 | 2.5828743 |
| self-teaching | 0.0373505 | -0.2714614 |
| program | 0.9333572 | 0.9880853 |
| rely | -0.3880698 | -0.1240620 |
| basic | -0.0144337 | 0.5152165 |
| type | 0.5143821 | 0.9179712 |
| machine | 1.5376507 | 2.0500463 |
| learn | 1.3605571 | 2.6998712 |
| unsupervised | 0.3365580 | -0.1560786 |
| learn | 1.3605571 | 2.6998712 |
| supervise | 0.6361466 | -0.0076004 |
| learn | 1.3605571 | 2.6998712 |
| reinforcement | 0.9111989 | -0.1725352 |
| learn | 1.3605571 | 2.6998712 |
| action | 0.3005430 | 1.2698172 |
| imagine | 0.4153269 | 1.8316738 |
| researcher | 0.4291195 | 0.6552271 |
| pull | -0.7095692 | 0.4550206 |
| information | 0.4455145 | 1.0859653 |
| set | 0.2194668 | 1.3799813 |
| medical | 0.1219865 | 0.4241029 |
| datum | 0.2038941 | 2.1394018 |
| thousand | -0.6327201 | 1.3977847 |
| patient | -0.4179482 | 0.5169117 |
| profile | 0.0894409 | -0.2019660 |
| unsupervised | 0.3365580 | -0.1560786 |
| learn | 1.3605571 | 2.6998712 |
| approach | 0.1099199 | 0.7501038 |
| ideal | 0.5859434 | 0.2300753 |
| analyze | 0.0304432 | 0.1671292 |
| profile | 0.0894409 | -0.2019660 |
| find | 0.3193917 | 2.8885411 |
| general | 0.6306511 | 0.6605379 |
| similarity | -0.0457993 | -0.2599420 |
| pattern | 1.1032917 | 0.7568950 |
| patient | -0.4179482 | 0.5169117 |
| similar | 0.2716809 | 0.4693967 |
| disease | -1.2584348 | 0.2680581 |
| presentation | 0.1299224 | -0.6669214 |
| treatment | -0.5430676 | -0.2346442 |
| produce | -0.7241987 | 0.7394374 |
| specific | -0.0210384 | 0.3990485 |
| set | 0.2194668 | 1.3799813 |
| side | 0.6128828 | 1.1087972 |
| effect | -0.9673782 | 0.7019542 |
| broad | -0.2349462 | 0.0748025 |
| pattern-seeking | 0.0774302 | 0.3327800 |
| approach | 0.1099199 | 0.7501038 |
| identify | 0.7154093 | 0.6519831 |
| similarity | -0.0457993 | -0.2599420 |
| patient | -0.4179482 | 0.5169117 |
| profile | 0.0894409 | -0.2019660 |
| find | 0.3193917 | 2.8885411 |
| emerge | 0.7033963 | 0.1742021 |
| pattern | 1.1032917 | 0.7568950 |
| human | 0.9943274 | 3.4300730 |
| guidance | 0.3770970 | -0.6781217 |
| imagine | 0.4153269 | 1.8316738 |
| doctor | -0.1246391 | 0.6178340 |
| specific | -0.0210384 | 0.3990485 |
| physician | 0.5429869 | -0.8243942 |
| create | 0.0601281 | 2.3934684 |
| algorithm | 1.4194495 | 1.2633921 |
| diagnose | -0.6098596 | -0.0223995 |
| condition | -0.2835306 | 0.5624355 |
| begin | 0.4175637 | 1.6990697 |
| collect | -0.1396974 | 0.5342967 |
| set | 0.2194668 | 1.3799813 |
| datum | 0.2038941 | 2.1394018 |
| medical | 0.1219865 | 0.4241029 |
| image | 1.0578542 | 1.0123109 |
| test | 1.0824076 | 0.6764967 |
| result | 0.4716050 | 0.9866008 |
| healthy | 0.0513653 | 0.6588220 |
| patient | -0.4179482 | 0.5169117 |
| diagnose | -0.6098596 | -0.0223995 |
| condition | -0.2835306 | 0.5624355 |
| input | 0.9993146 | -0.1565847 |
| datum | 0.2038941 | 2.1394018 |
| program | 0.9333572 | 0.9880853 |
| design | 0.5685137 | 1.5617515 |
| identify | 0.7154093 | 0.6519831 |
| feature | 0.7682994 | -0.3015804 |
| share | 0.1201381 | 1.7193703 |
| sick | -0.0710369 | 0.1141436 |
| patient | -0.4179482 | 0.5169117 |
| healthy | 0.0513653 | 0.6588220 |
| patient | -0.4179482 | 0.5169117 |
| base | 0.6623085 | 1.1142376 |
| frequently | 0.7311059 | -0.5923912 |
| see | 0.5211378 | 0.1777288 |
| feature | 0.7682994 | -0.3015804 |
| program | 0.9333572 | 0.9880853 |
| assign | 0.0701098 | -0.4651571 |
| value | 0.2840550 | 0.6080404 |
| feature | 0.7682994 | -0.3015804 |
| diagnostic | 0.4830349 | -0.3460687 |
| significance | -0.0003362 | -0.1787251 |
| generate | 0.4755530 | 0.6925221 |
| algorithm | 1.4194495 | 1.2633921 |
| diagnose | -0.6098596 | -0.0223995 |
| future | 0.2854957 | 2.5568317 |
| patient | -0.4179482 | 0.5169117 |
| unlike | 0.4482617 | -0.2473963 |
| unsupervised | 0.3365580 | -0.1560786 |
| learn | 1.3605571 | 2.6998712 |
| doctor | -0.1246391 | 0.6178340 |
| computer | 1.6623174 | 2.2142813 |
| scientist | 0.0252842 | 1.1262502 |
| active | 0.4401833 | 0.0624633 |
| role | 0.3535156 | 0.7035888 |
| doctor | -0.1246391 | 0.6178340 |
| make | -0.3387795 | 4.2717942 |
| final | 0.2605484 | 0.2182287 |
| diagnosis | -0.3617847 | -0.2187834 |
| check | 0.0073682 | 0.5853721 |
| accuracy | -0.6851635 | 0.3358437 |
| algorithm’s | 0.5663473 | -0.2430070 |
| prediction | 0.7576166 | 0.5410350 |
| computer | 1.6623174 | 2.2142813 |
| scientist | 0.0252842 | 1.1262502 |
| update | 0.0653448 | -0.4110671 |
| dataset | 0.0795133 | -0.6244753 |
| adjust | 0.5504651 | -0.4596838 |
| program’s | -0.1890760 | -0.3196994 |
| parameter | -0.0893403 | -0.2590581 |
| improve | 0.5783916 | 0.9269032 |
| accuracy | -0.6851635 | 0.3358437 |
| hands-on | 0.0435083 | -0.4467440 |
| approach | 0.1099199 | 0.7501038 |
| call | 0.3991184 | 2.7563847 |
| supervise | 0.6361466 | -0.0076004 |
| learn | 1.3605571 | 2.6998712 |
| doctor | -0.1246391 | 0.6178340 |
| design | 0.5685137 | 1.5617515 |
| algorithm | 1.4194495 | 1.2633921 |
| recommend | 1.0661886 | -0.1029762 |
| treatment | -0.5430676 | -0.2346442 |
| plan | 0.0520563 | 0.9041258 |
| plan | 0.0520563 | 0.9041258 |
| implement | -0.2902355 | 0.0323296 |
| stage | 0.0803133 | 0.6624616 |
| change | -1.1257447 | 2.7984912 |
| depend | -0.0660032 | 0.4220400 |
| individual’s | -0.4089556 | -0.4474892 |
| response | 0.7583162 | 0.6301635 |
| treatment | -0.5430676 | -0.2346442 |
| doctor | -0.1246391 | 0.6178340 |
| decide | 0.5118778 | 1.4046306 |
| reinforcement | 0.9111989 | -0.1725352 |
| learn | 1.3605571 | 2.6998712 |
| program | 0.9333572 | 0.9880853 |
| iterative | 0.3377259 | -0.3088869 |
| approach | 0.1099199 | 0.7501038 |
| gather | 0.1792741 | 0.1383092 |
| feedback | 0.8137029 | 0.0992720 |
| medication | 0.0824420 | -0.6377832 |
| dosage | -0.0692818 | -0.6007098 |
| treatment | -0.5430676 | -0.2346442 |
| effective | 0.0328664 | 0.5961696 |
| compare | -0.1354502 | 0.2791782 |
| datum | 0.2038941 | 2.1394018 |
| patient’s | 0.0093048 | -0.6616511 |
| profile | 0.0894409 | -0.2019660 |
| create | 0.0601281 | 2.3934684 |
| unique | -0.1438308 | 0.4274753 |
| optimal | 0.2819123 | -0.6465306 |
| treatment | -0.5430676 | -0.2346442 |
| plan | 0.0520563 | 0.9041258 |
| dimension1 | dimension2 | |
|---|---|---|
| text1 | 0.2709277 | 0.7512324 |
| text2 | 0.4151799 | 0.9684588 |
| text3 | 0.2466364 | 1.1242400 |
| text4 | 0.2350248 | 1.2377504 |
| text5 | 0.3214014 | 1.0811997 |
| text6 | 0.4063020 | 1.3325672 |
| text7 | 0.3395273 | 1.1668672 |
| text8 | 0.3397086 | 1.0941657 |
| text9 | 0.4061817 | 1.3347125 |
| text10 | 0.5976759 | 1.2912744 |
| text11 | 0.2077112 | 1.0248086 |
| text12 | 0.4058615 | 1.4216218 |
| text13 | 0.0102016 | 1.3608191 |
| text14 | 0.1526326 | 1.6346111 |
| text15 | -0.1773134 | 2.0416765 |
| text16 | 0.0832803 | 1.2331251 |
| text17 | 0.0356698 | 1.4180406 |
| text18 | 0.0965144 | 1.3687565 |
| text19 | 0.0802633 | 1.3606523 |
| text20 | 0.1609767 | 1.3690090 |
| text21 | -0.0568655 | 1.1625115 |
| text22 | 0.2514714 | 0.9948947 |
| text23 | 0.0810500 | 1.1851033 |
| text24 | 0.2712057 | 1.1956260 |
| text25 | 0.2505008 | 1.3123099 |
| text26 | 0.0218394 | 1.3720004 |
| text27 | -0.1313788 | 1.5563885 |
| text28 | 0.0531998 | 0.8575422 |
| text29 | 0.3803628 | 1.0799746 |
| text30 | -0.0481467 | 1.1349954 |
| text31 | 0.1852120 | 1.0219946 |
| text32 | 0.1814545 | 1.6967918 |
| text33 | -0.3441812 | 1.5052300 |
| text34 | 0.2972337 | 1.1990413 |
| text35 | 0.1755490 | 1.1532285 |
| text36 | 0.3466876 | 1.3990078 |
| text37 | 0.2068691 | 1.2041732 |
| text38 | 0.2073838 | 0.7832560 |
| text39 | 0.1187597 | 1.1018392 |
| text40 | 0.1924638 | 1.0854960 |
| text41 | 0.3033122 | 1.1510831 |
| text42 | 0.2572423 | 0.5792655 |
| text43 | 0.2237428 | 0.8946439 |
| text44 | 0.1151908 | 0.6711979 |
| text45 | 0.0339561 | 1.1270306 |
| text46 | 0.1105561 | 0.6767930 |
| text47 | 0.1828900 | 1.0852696 |
| text48 | -0.0693717 | 0.7751755 |
| text49 | 0.1696723 | 1.2589084 |
| text50 | 0.3255871 | 1.3243870 |
| text51 | -0.0012330 | 0.7145463 |
| text52 | -0.0376210 | 0.7351326 |
| text53 | 0.1448720 | 0.8655408 |
| text54 | 0.1124782 | 0.9487589 |
| text55 | 0.1002806 | 0.7700794 |
| text56 | -0.0130286 | 1.0954547 |
| text57 | 0.3619427 | 0.1875556 |
| text58 | 0.1043440 | 0.8675636 |
| text59 | 0.1932323 | 1.0318282 |
| text60 | -0.0681551 | 1.3731357 |
| text61 | -0.4131275 | 0.7077027 |
| text62 | -0.5481259 | 1.2803576 |
| text63 | -0.3548012 | 1.1611471 |
| text64 | 0.2703442 | 1.0266700 |
| text65 | 0.0953760 | 0.9062987 |
| text66 | 0.0203683 | 1.2597137 |
| text67 | 0.2245822 | 1.2944582 |
| text68 | 0.1246039 | 1.3714698 |
| text69 | -0.1812595 | 1.3829592 |
| text70 | 0.2437340 | 0.8618678 |
| text71 | 0.0522071 | 0.9952718 |
| text72 | 0.2914456 | 1.0329528 |
| text73 | -0.0625922 | 0.9278840 |
| text74 | -0.5111175 | 0.7679292 |
| text75 | -0.0861332 | 0.9035537 |
| text76 | -0.1262422 | 1.1799738 |
| text77 | -0.0701273 | 1.2536934 |
| text78 | -0.2178672 | 0.9053597 |
| text79 | -0.2849598 | 1.0058049 |
| text80 | -0.2933457 | 1.0926894 |
| text81 | -0.2244763 | 1.0699614 |
| text82 | -0.0474787 | 1.0231063 |
| text83 | -0.0871767 | 1.2890897 |
| text84 | -0.0280496 | 1.0319476 |
| text85 | 0.2642792 | 1.1846999 |
| text86 | 0.1170309 | 1.0970479 |
| text87 | 0.2122495 | 0.8796349 |
| text88 | 0.3853238 | 1.5580005 |
| text89 | 0.2436493 | 0.5488286 |
| text90 | 0.2714218 | 0.7879432 |
| text91 | 0.0999587 | 1.0878410 |
| text92 | 0.1251373 | 0.9543185 |
| text93 | 0.0397107 | 0.5106452 |
| text94 | -0.0076993 | 0.5760305 |
| text95 | 0.0081890 | 0.8528156 |
| text96 | 0.5434075 | 0.9400085 |
| text97 | 0.6161010 | 1.0904271 |
| text98 | 0.4803582 | 0.8790543 |
| text99 | 0.4503665 | 1.1730768 |
| text100 | 0.3514449 | 1.4753230 |
| text101 | 0.1318320 | 1.5145699 |
| text102 | 0.4074807 | 1.2124295 |
| text103 | 0.3013044 | 1.1159797 |
| text104 | 0.0770755 | 1.0393423 |
| text105 | 0.1611375 | 1.1901817 |
| text106 | 0.0175627 | 1.0344855 |
| text107 | 0.1047148 | 0.8448573 |
| text108 | 0.0644890 | 0.7917805 |
| text109 | -0.0912438 | 1.0375242 |
| text110 | -0.1351287 | 1.0885113 |
| text111 | 0.0658714 | 1.0648468 |
| text112 | 0.0441942 | 0.9825123 |
| text113 | 0.2740752 | 1.2393825 |
| text114 | 0.1224984 | 1.5163632 |
| text115 | -0.1078071 | 0.7936114 |
| text116 | -0.1574545 | 0.6537182 |
| text117 | 0.1957324 | 0.4252172 |
| text118 | 0.0748250 | 1.0459668 |
| text119 | 0.1093269 | 0.8196253 |
| text120 | 0.1383086 | 0.7288616 |
| text121 | 0.1912517 | 0.7866500 |
| text122 | 0.0848710 | 1.7019444 |
| text123 | 0.2147225 | 0.9324179 |
| text124 | 0.1157038 | 0.7881865 |
| text125 | 0.1246754 | 0.7566726 |
| text126 | 0.3882140 | 1.5316885 |
| text127 | -0.0100711 | 0.4875858 |
| text128 | -0.1540917 | 0.1608165 |
| text129 | 0.1779021 | 0.9350534 |
| text130 | 0.2086714 | 0.6303924 |
| text131 | 0.1669246 | 0.6325451 |
| text132 | -0.0519129 | 1.1983794 |
| text133 | 0.1445187 | 1.1996271 |
| text134 | 0.1562267 | 1.0974519 |
| text135 | -0.0579134 | 0.9979655 |
| text136 | -0.0626077 | 1.2056114 |
| text137 | -0.0217871 | 0.6219046 |
| text138 | 0.1122585 | 0.8775574 |
| text139 | 0.0856921 | 0.8911775 |
| text140 | 0.2077350 | 0.8523821 |
| text141 | 0.1900198 | 0.5331519 |
| text142 | -0.3914593 | 0.6148101 |
| text143 | -0.0556648 | 0.8829033 |
| text144 | 0.1542887 | 1.1887418 |
| text145 | 0.0523112 | 0.6146210 |
| text146 | 0.0859265 | 0.7865136 |
| text147 | -0.0830549 | 0.4426949 |
| text148 | 0.1040254 | 1.1487754 |
| text149 | 0.1801549 | 0.9910604 |
| text150 | 0.1390815 | 0.9017739 |
| text151 | 0.1258939 | 1.0939036 |
| text152 | 0.0505367 | 1.1504094 |
| text153 | 0.1816624 | 1.1482463 |
| text154 | -0.4005042 | 0.8106614 |
| text155 | 0.2013444 | 1.1891805 |
| text156 | 0.3633522 | 1.2875965 |
| text157 | 0.1411461 | 1.2763875 |
| text158 | 0.1559586 | 0.4986808 |
| text159 | -0.2108517 | 0.9893826 |
| text160 | -0.2650462 | 0.7530995 |
| text161 | 0.1502474 | 0.7956294 |
| text162 | 0.3528285 | 0.5027114 |
| text163 | 0.1959602 | 0.6507239 |
| text164 | 0.2362834 | 0.8251725 |
| text165 | -0.0145254 | 0.7120742 |
| text166 | 0.1086890 | 0.7660944 |
| text167 | 0.2834112 | 0.9862665 |
| text168 | 0.5076028 | 0.4621613 |
| text169 | -0.2126588 | 1.0505764 |
| text170 | -0.1866934 | 0.8540100 |
| text171 | 0.1825481 | 0.9811926 |
| text172 | 0.0233071 | 1.2509559 |
| text173 | 0.0846573 | 1.1670568 |
| text174 | 0.1599727 | 1.1635874 |
| text175 | 0.1333300 | 0.7401813 |
| text176 | 0.2837345 | 0.6487392 |
| text177 | 0.3913657 | 0.9499424 |
| text178 | 0.3229234 | 1.5951866 |
| text179 | 0.2316253 | 1.1503358 |
| text180 | 0.0854662 | 0.7609706 |
| text181 | -0.0794472 | 0.8226630 |
| text182 | 0.1621554 | 1.3364387 |
| text183 | 0.1020109 | 0.7580583 |
| text184 | 0.1175607 | 0.8773887 |
| text185 | 0.1115607 | 0.9895646 |
| text186 | 0.1666058 | 0.9576314 |
| text187 | 0.1287587 | 2.2944172 |
| text188 | 0.3373275 | 0.8839805 |
| text189 | 0.1548608 | 0.8371301 |
| text190 | 0.2614703 | 1.0915145 |
| text191 | 0.0267963 | 0.6603627 |
| text192 | 0.2681406 | 1.1133805 |
| text193 | 0.3167654 | 0.9594795 |
| text194 | 0.2279724 | 1.0033087 |
| text195 | 0.3942465 | 0.8315348 |
| text196 | 0.4960703 | 1.2725817 |
| text197 | 0.2007681 | 0.9297618 |
| text198 | -0.0596819 | 1.1449072 |
| text199 | 0.0090280 | 1.0414777 |
| text200 | 0.0669971 | 1.0212119 |
| text201 | 0.1150198 | 0.9842693 |
| text202 | 0.0047369 | 0.7914707 |
| text203 | 0.2240330 | 1.0295411 |
| text204 | 0.2599537 | 1.1659764 |
| text205 | -0.0407968 | 0.9627442 |
| text206 | 0.0012679 | 1.1381714 |
| text207 | 0.1221252 | 1.0468251 |
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| text213 | 0.3554466 | 1.2288111 |
| text214 | 0.1155648 | 0.8141945 |
| text215 | 0.3829716 | 1.0164283 |
| text216 | 0.4023669 | 0.9236835 |
| text217 | -0.0532139 | 0.8459739 |
| text218 | 0.2246705 | 1.0403599 |
| text219 | 0.0655214 | 0.7716609 |
| text220 | 0.0765975 | 0.9318347 |
| text221 | 0.0916586 | 1.7415424 |
| text222 | 0.3251531 | 1.4099981 |
| text223 | 0.5508282 | 1.5159941 |
| text224 | 0.4600882 | 1.0329308 |
| text225 | 0.2577528 | 1.3831839 |
| text226 | 0.1232341 | 1.0568551 |
| text227 | 0.0632262 | 1.2235817 |
| text228 | 0.1340066 | 1.2933366 |
| text229 | 0.1568734 | 1.5749283 |
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Now, we make the representation of the documents and use different
color to represent the document in diffrent category.
According to this plot, the documents in the category “climate change”
and “relationships” covers the largest area of each other. So maybe the
documents in these two categories are more similar when compared with
the documents in the category “AI”.
First, we use LSA on TF to have a reduced dimension version of the DFM and build a random forest model to predict the category from the LSA.
We build our data frame consisting of the category and the “doc” matrix of the LSA. Along with this, we build the training set index based on a 80/20 split.
The data is unbalanced so We need to use the sub-sampling method to balance the data.
##
## 1 2 3
## 450 327 401
##
## 1 2 3
## 327 327 327
We now use a random forest to predict the category from the LSA on TF. The resulting accuracy is inspected on the test set.
## Confusion Matrix and Statistics
##
## Reference
## Prediction 1 2 3
## 1 82 4 6
## 2 9 71 9
## 3 21 6 85
##
## Overall Statistics
##
## Accuracy : 0.8123
## 95% CI : (0.7628, 0.8553)
## No Information Rate : 0.3823
## P-Value [Acc > NIR] : < 2e-16
##
## Kappa : 0.718
##
## Mcnemar's Test P-Value : 0.01253
##
## Statistics by Class:
##
## Class: 1 Class: 2 Class: 3
## Sensitivity 0.7321 0.8765 0.8500
## Specificity 0.9448 0.9151 0.8601
## Pos Pred Value 0.8913 0.7978 0.7589
## Neg Pred Value 0.8507 0.9510 0.9171
## Prevalence 0.3823 0.2765 0.3413
## Detection Rate 0.2799 0.2423 0.2901
## Detection Prevalence 0.3140 0.3038 0.3823
## Balanced Accuracy 0.8384 0.8958 0.8551
According to the confusion matrix, the accuracy is 0.8089 and the balanced accuracy for class 1 is 0.8340, for class 2 is 0.8911, and for class 3 is 0.8576.
Now we repeat the steps and use LSA on TF-IDF to have a reduced dimension version of the DFM and build a random forest model to predict the category from the LSA.
## Confusion Matrix and Statistics
##
## Reference
## Prediction 1 2 3
## 1 90 3 4
## 2 5 73 2
## 3 17 5 94
##
## Overall Statistics
##
## Accuracy : 0.8771
## 95% CI : (0.834, 0.9124)
## No Information Rate : 0.3823
## P-Value [Acc > NIR] : < 2e-16
##
## Kappa : 0.8146
##
## Mcnemar's Test P-Value : 0.02004
##
## Statistics by Class:
##
## Class: 1 Class: 2 Class: 3
## Sensitivity 0.8036 0.9012 0.9400
## Specificity 0.9613 0.9670 0.8860
## Pos Pred Value 0.9278 0.9125 0.8103
## Neg Pred Value 0.8878 0.9624 0.9661
## Prevalence 0.3823 0.2765 0.3413
## Detection Rate 0.3072 0.2491 0.3208
## Detection Prevalence 0.3311 0.2730 0.3959
## Balanced Accuracy 0.8824 0.9341 0.9130
According to the confusion matrix, the model build on features using LSA on TF-ITF is better than the model build on features using LSA on TF. The accuracy is 0.8805 and the balanced accuracy for class 1 is 0.8897, for class 2 is 0.9317, and for class 3 is 0.9156.
##
## 1 2 3
## 450 327 401
## Confusion Matrix and Statistics
##
## Reference
## Prediction 1 2 3
## 1 87 6 9
## 2 5 71 7
## 3 20 4 84
##
## Overall Statistics
##
## Accuracy : 0.8259
## 95% CI : (0.7776, 0.8676)
## No Information Rate : 0.3823
## P-Value [Acc > NIR] : <2e-16
##
## Kappa : 0.7374
##
## Mcnemar's Test P-Value : 0.1659
##
## Statistics by Class:
##
## Class: 1 Class: 2 Class: 3
## Sensitivity 0.7768 0.8765 0.8400
## Specificity 0.9171 0.9434 0.8756
## Pos Pred Value 0.8529 0.8554 0.7778
## Neg Pred Value 0.8691 0.9524 0.9135
## Prevalence 0.3823 0.2765 0.3413
## Detection Rate 0.2969 0.2423 0.2867
## Detection Prevalence 0.3481 0.2833 0.3686
## Balanced Accuracy 0.8470 0.9100 0.8578
## Confusion Matrix and Statistics
##
## Reference
## Prediction 1 2 3
## 1 95 3 2
## 2 5 73 2
## 3 12 5 96
##
## Overall Statistics
##
## Accuracy : 0.901
## 95% CI : (0.861, 0.9327)
## No Information Rate : 0.3823
## P-Value [Acc > NIR] : < 2e-16
##
## Kappa : 0.8506
##
## Mcnemar's Test P-Value : 0.03026
##
## Statistics by Class:
##
## Class: 1 Class: 2 Class: 3
## Sensitivity 0.8482 0.9012 0.9600
## Specificity 0.9724 0.9670 0.9119
## Pos Pred Value 0.9500 0.9125 0.8496
## Neg Pred Value 0.9119 0.9624 0.9778
## Prevalence 0.3823 0.2765 0.3413
## Detection Rate 0.3242 0.2491 0.3276
## Detection Prevalence 0.3413 0.2730 0.3857
## Balanced Accuracy 0.9103 0.9341 0.9360
One of the limitation is from the data. As the process of obtaining transcript is clicking in each videos to scrape from website, it is hard to have a huge amount of data due to R or our laptop capacity and time limitation. Furthermore, as mentioned in the data preparation part, the structure of the TED website is not perfect for scraping text. Thus, it also brought us difficulties in terms of data richness and diversity. Besides, the distribution of additional features on the TED website is relatively fragmented, such as information about the speakers, comments from viewers, etc. In this case, there are less additional features which are valuable to be used in our analysis.
Since in our analysis, we could get a not-bad prediction in terms of the categories, as an external analyst, we can broaden our research in response to available information. For example, we can also analyze trends in TED talk releases and predict their release schedule, which can help investors understand what kind of talks TED wants or is capable of organizing in the next year or six months and what messages it will deliver to its audience. Also, since many speakers do not have only one talk in the TED talk module. We can also analyze the variations in the wording of their speeches under the prerequisite of the same speakers or the same topics. Now, TED talks has near to 400 options for choosing videos’ categories. From our perspective, it is not perfect for users selecting their favorite topic. Therefore, TED can improve the classification of videos by analyzing what categories viewers’ comments on the videos are more inclined to.
From the sentiment analysis, we could clearly see that TED talks always posts positive speaks, which can inspire audiences to face challenges and consider the issues from a positive side. On the other hand, we can observe that this situation does not distinguish between the categories of videos, so to some extent there is the lack of diversity in term of the videos’ sentiment.